, Tunable Localized Surface Plasmon Resonance and Broadband Visible Photoresponse of Cu Nanoparticles/ZnO Surfaces

. .. Cu/zno-schottky-diode, Electrodeposition of Cu-ZnO and Mn-Cu-ZnO Nanowires/tubes for Synthesis of Ethanol, ECS Meeting Abstracts, 2008.

. .. Chapter-conclusions, CHAPTER V. SUMMARY AND CONCLUSIONS, Negro Illegitimacy in New York City, pp.121-132, 1926.

, Semi-Transparent pCu2O/n-ZnO Nanoscale-Film Heterojunctions for Photodetection and Photovoltaic Applications

P. Photovoltaics and . .. Applications, 125 5.2 Structural, Morphological and Chemical Characterization

O. Pagni, G. R. James, and A. W. Leitch, Structural and optical characterization of MOCVD-grown ZnO thin films, physica status solidi (c), vol.1, issue.4, pp.864-867, 2004.

R. Yatskiv, S. Tiagulskyi, J. Grym, J. Vani?, N. Ba?inová et al., Optical and electrical characterization of CuO/ZnO heterojunctions, Thin Solid Films, vol.693, p.137656, 2020.

T. Minami, T. Miyata, K. Ihara, Y. Minamino, and S. Tsukada, Effect of ZnO film deposition methods on the photovoltaic properties of ZnO?Cu2O heterojunction devices, Thin Solid Films, vol.494, issue.1-2, pp.47-52, 2006.

H. Chalabi, D. Schoen, and M. L. Brongersma, Hot-Electron Photodetection with a Plasmonic Nanostripe Antenna, Nano Letters, vol.14, issue.3, pp.1374-1380, 2014.

A. Pescaglini, A. Martín, D. Cammi, G. Juska, C. Ronning et al., Hot-Electron Injection in Au Nanorod?ZnO Nanowire Hybrid Device for Near-Infrared Photodetection, Nano Letters, vol.14, issue.11, pp.6202-6209, 2014.

L. C. Olsen, F. W. Addis, and W. Miller, Experimental and theoretical studies of Cu2O solar cells, Solar Cells, vol.7, issue.3, pp.247-279, 1982.

T. Minami, Y. Nishi, and T. Miyata, Efficiency enhancement using a Zn1?xGex-O thin film as an n-type window layer in Cu2O-based heterojunction solar cells, Applied Physics Express, vol.9, issue.5, p.052301, 2016.

S. Rühle, A. Y. Anderson, H. Barad, B. Kupfer, Y. Bouhadana et al., All-Oxide Photovoltaics, The Journal of Physical Chemistry Letters, vol.3, issue.24, pp.3755-3764, 2012.

P. Ghamgosar, F. Rigoni, S. You, I. Dobryden, M. G. Kohan et al., ZnO-Cu2O core-shell nanowires as stable and fast response photodetectors, Nano Energy, vol.51, pp.308-316, 2018.

B. K. Meyer, A. Polity, D. Reppin, M. Becker, P. Hering et al., Binary copper oxide semiconductors: From materials towards devices, physica status solidi (b), vol.249, issue.8, pp.1487-1509, 2012.

C. Müller and . Ronning, Binary copper oxide semiconductors: From materials towards devices, Phys. Status Solidi B, vol.249, pp.1487-1509, 2012.

S. T. Omelchenko, Y. Tolstova, H. A. Atwater, and N. S. Lewis, Excitonic Effects in Emerging Photovoltaic Materials: A Case Study in Cu2O, ACS Energy Letters, vol.2, issue.2, pp.431-437, 2017.

T. Kazimierczuk, D. Fröhlich, S. Scheel, H. Stolz, and M. Bayer, Giant Rydberg excitons in the copper oxide Cu2O, Nature, vol.514, issue.7522, pp.343-347, 2014.

M. Saffman, T. G. Walker, and K. Mølmer, Quantum information with Rydberg atoms, Reviews of Modern Physics, vol.82, issue.3, pp.2313-2363, 2010.

C. Malerba, F. Biccari, C. Leonor-azanza-ricardo, M. D?incau, P. Scardi et al., Absorption coefficient of bulk and thin film Cu2O, Solar Energy Materials and Solar Cells, vol.95, issue.10, pp.2848-2854, 2011.

F. Schöne, H. Stolz, and N. Naka, Phonon-assisted absorption of excitons in Cu2O, Physical Review B, vol.96, issue.11, 2017.

B. , , p.115207, 2017.

Y. Wang, P. Miska, D. Pilloud, D. Horwat, F. Mücklich et al., Transmittance enhancement and optical band gap widening of Cu2O thin films after air annealing, Journal of Applied Physics, vol.115, issue.7, p.073505, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01284785

Y. Wang, P. Miska, D. Pilloud, D. Horwat, F. Mücklich et al., Transmittance enhancement and optical band gap widening of Cu2O thin films after air annealing, Journal of Applied Physics, vol.115, issue.7, p.073505, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01284785

F. S. Schweiner, Theory of excitons in cuprous oxide, 2017.

A. Soon, X. Cui, B. Delley, S. Wei, and C. Stampfl, Native defect-induced multifarious magnetism in nonstoichiometric cuprous oxide: First-principles study of bulk and surface properties ofCu2??O, Physical Review B, vol.79, issue.3, p.35205, 2009.

D. O. Scanlon, B. J. Morgan, G. W. Watson, and A. Walsh, Acceptor Levels inp-TypeCu2O: Rationalizing Theory and Experiment, Physical Review Letters, vol.103, issue.9, p.96405, 2009.

G. K. Paul, R. Ghosh, S. K. Bera, S. Bandyopadhyay, T. Sakurai et al., Deep level transient spectroscopy of cyanide treated polycrystalline p-Cu2O/n-ZnO solar cell, Chemical Physics Letters, vol.463, issue.1-3, pp.117-120, 2008.

Y. Wang, J. Ghanbaja, D. Horwat, L. Yu, and J. F. Pierson, Nitrogen chemical state in N-doped Cu2O thin films, Applied Physics Letters, vol.110, issue.13, p.131902, 2017.

D. O. Scanlon and G. W. Watson, Uncovering the Complex Behavior of Hydrogen inCu2O, Physical Review Letters, vol.106, issue.18, p.186403, 2011.

Y. Wang, J. Ghanbaja, F. Soldera, P. Boulet, D. Horwat et al., Controlling the preferred orientation in sputter-deposited Cu2O thin films: Influence of the initial growth stage and homoepitaxial growth mechanism, Acta Materialia, vol.76, pp.207-212, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01293265

S. B. Ogale, P. G. Bilurkar, N. Mate, S. M. Kanetkar, N. Parikh et al., Deposition of copper oxide thin films on different substrates by pulsed excimer laser ablation, Journal of Applied Physics, vol.72, issue.8, pp.3765-3769, 1992.

U. C. Bind, R. K. Dutta, G. K. Sekhon, K. L. Yadav, J. B. Krishna et al., Ion implantation induced phase transformation and enhanced crystallinity of as deposited copper oxide thin films by pulsed laser deposition, Superlattices and Microstructures, vol.84, pp.24-35, 2015.

Z. Zhang and P. Wang, Highly stable copper oxide composite as an effective photocathode for water splitting via a facile electrochemical synthesis strategy, J. Mater. Chem., vol.22, issue.6, pp.2456-2464, 2012.

H. Kim, M. Y. Lee, S. Kim, S. I. Bae, K. Y. Ko et al., Highly-conformal p-type copper(I) oxide (Cu2O) thin films by atomic layer deposition using a fluorine-free amino-alkoxide precursor, Applied Surface Science, vol.349, pp.673-682, 2015.

D. Muñoz-rojas, M. Jordan, C. Yeoh, A. T. Marin, A. Kursumovic et al., Growth of ?5 cm2V?1s?1 mobility, p-type Copper(I) oxide (Cu2O) films by fast atmospheric atomic layer deposition (AALD) at 225°C and below, AIP Advances, vol.2, issue.4, p.042179, 2012.

A. Iza, H. Chen, J. L. Wang, and . Driscoll, Growth of ? 5 cm 2 V ?1 s ?1 mobility, p-type Copper(I) oxide (Cu2O) films by fast atmospheric atomic layer deposition (AALD) at 225°C and below, AIP Adv, vol.2, p.42179, 2012.

B. P. Rai, Cu2O solar cells: a review, Sol. Cells, vol.25, pp.90065-90073, 1988.

K. Mizuno, M. Izaki, K. Murase, T. Shinagawa, M. Chigane et al., Structural and Electrical Characterizations of Electrodeposited p-Type Semiconductor Cu2O Films., ChemInform, vol.36, issue.30, 2005.

. Awakura, Structural and Electrical Characterizations of Electrodeposited p-Type Semiconductor Cu2O Films, J. Electrochem. Soc, vol.152, p.179, 2005.

Y. S. Lee, M. T. Winkler, S. C. Siah, R. Brandt, and T. Buonassisi, Hall mobility of cuprous oxide thin films deposited by reactive direct-current magnetron sputtering, Applied Physics Letters, vol.98, issue.19, p.192115, 2011.

Y. S. Lee, M. T. Winkler, S. C. Siah, R. Brandt, and T. Buonassisi, Hall mobility of cuprous oxide thin films deposited by reactive direct-current magnetron sputtering, Applied Physics Letters, vol.98, issue.19, p.192115, 2011.

M. Leskelä and M. Ritala, Atomic Layer Deposition Chemistry: Recent Developments and Future Challenges, Angewandte Chemie International Edition, vol.42, issue.45, pp.5548-5554, 2003.

P. Poodt, D. C. Cameron, E. Dickey, S. M. George, V. Kuznetsov et al., Spatial atomic layer deposition: A route towards further industrialization of atomic layer deposition, Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, vol.30, issue.1, p.010802, 2012.

A. T. Marin, D. Muñoz-rojas, D. C. Iza, T. Gershon, K. P. Musselman et al., Novel Atmospheric Growth Technique to Improve Both Light Absorption and Charge Collection in ZnO/Cu2O Thin Film Solar Cells, Advanced Functional Materials, vol.23, issue.27, pp.3413-3419, 2013.

T. Wächtler, Thin films of copper oxide and copper grown by atomic layer deposition for applications in metallization systems of microelectronic devices, 2010.

P. Mårtensson and J. Carlsson, Atomic Layer Epitaxy of Copper on Tantalum, Chemical Vapor Deposition, vol.3, issue.1, pp.45-50, 1997.

P. Mårtensson and J. Carlsson, Atomic Layer Epitaxy of Copper on Tantalum, Chemical Vapor Deposition, vol.3, issue.1, pp.45-50, 1997.

R. Solanki and B. Pathangey, Atomic Layer Deposition of Copper Seed Layers, Electrochemical and Solid-State Letters, vol.3, issue.10, p.479, 1999.

J. Huo, R. Solanki, and J. Mcandrew, Characteristics of copper films produced via atomic layer deposition, Journal of Materials Research, vol.17, issue.9, pp.2394-2398, 2002.

Z. Li, A. Rahtu, and R. G. Gordon, Atomic Layer Deposition of Ultrathin Copper Metal Films from a Liquid Copper(I) Amidinate Precursor, Journal of The Electrochemical Society, vol.153, issue.11, p.C787, 2006.

D. Dhakal, K. Assim, H. Lang, P. Bruener, T. Grehl et al., Atomic layer deposition of ultrathin Cu2O and subsequent reduction to Cu studied by in situ x-ray photoelectron spectroscopy, Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, vol.34, issue.1, p.01A111, 2016.

D. Dhakal, K. Assim, H. Lang, P. Bruener, T. Grehl et al., Atomic layer deposition of ultrathin Cu2O and subsequent reduction to Cu studied by in situ x-ray photoelectron spectroscopy, Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, vol.34, issue.1, p.01A111, 2016.

T. Törndahl, M. Ottosson, and J. Carlsson, Growth of copper metal by atomic layer deposition using copper(I) chloride, water and hydrogen as precursors, Thin Solid Films, vol.458, issue.1-2, pp.129-136, 2004.

T. To?rndahl, M. Ottosson, and J. Carlsson, Growth of Copper(I) Nitride by ALD Using Copper(II) Hexafluoroacetylacetonate, Water, and Ammonia as Precursors, Journal of The Electrochemical Society, vol.153, issue.3, p.C146, 2006.

J. Kwon, S. Kwon, T. Jung, K. Nam, K. Chung et al., Controlled growth and properties of p-type cuprous oxide films by plasma-enhanced atomic layer deposition at low temperature, Applied Surface Science, vol.285, pp.373-379, 2013.

M. E. Alnes, E. Monakhov, H. Fjellvåg, and O. Nilsen, Atomic Layer Deposition of Copper Oxide using Copper(II) Acetylacetonate and Ozone, Chemical Vapor Deposition, vol.18, issue.4-6, pp.173-178, 2012.

A. Janotti and C. G. Van-de-walle, Fundamentals of zinc oxide as a semiconductor, Reports on Progress in Physics, vol.72, issue.12, p.126501, 2009.

Z. L. Wang, Zinc oxide nanostructures: growth, properties and applications, Journal of Physics: Condensed Matter, vol.16, issue.25, pp.R829-R858, 2004.

E. Fortunato, P. Barquinha, and R. Martins, Oxide Semiconductor Thin-Film Transistors: A Review of Recent Advances, Advanced Materials, vol.24, issue.22, pp.2945-2986, 2012.

H. Lahmar, A. Azizi, G. Schmerber, and A. Dinia, Effect of the thickness of the ZnO buffer layer on the properties of electrodeposited p-Cu2O/n-ZnO/n-AZO heterojunctions, RSC Advances, vol.6, issue.73, pp.68663-68674, 2016.

H. Lahmar, A. Azizi, G. Schmerber, and A. Dinia, Effect of the thickness of the ZnO buffer layer on the properties of electrodeposited p-Cu2O/n-ZnO/n-AZO heterojunctions, RSC Advances, vol.6, issue.73, pp.68663-68674, 2016.

S. Du, W. Tang, X. Lu, S. Wang, Y. Guo et al., Methanol Production: Cu-Decorated ZnO Nanorod Array Integrated Structured Catalysts for Low-Pressure CO2 Hydrogenation to Methanol (Adv. Mater. Interfaces 3/2018), Advanced Materials Interfaces, vol.5, issue.3, p.1870011, 2018.

S. K. Shaikh, V. V. Ganbavle, S. I. Inamdar, and K. Y. Rajpure, Multifunctional zinc oxide thin films for high-performance UV photodetectors and nitrogen dioxide gas sensors, RSC Advances, vol.6, issue.31, pp.25641-25650, 2016.

S. K. Shaikh, V. V. Ganbavle, S. I. Inamdar, and K. Y. Rajpure, Multifunctional zinc oxide thin films for high-performance UV photodetectors and nitrogen dioxide gas sensors, RSC Advances, vol.6, issue.31, pp.25641-25650, 2016.

C. Klingshirn, ZnO: From basics towards applications, physica status solidi (b), vol.244, issue.9, pp.3027-3073, 2007.

F. Oba, A. Togo, I. Tanaka, J. Paier, and G. Kresse, Defect energetics in ZnO: A hybrid Hartree-Fock density functional study, Physical Review B, vol.77, issue.24, p.245202, 2008.

D. G. Thomas, Interstitial zinc in zinc oxide, J. Phys. Chem. Solids, vol.3, pp.90027-90033, 1957.

Ü. Özgür, Y. I. Alivov, C. Liu, A. Teke, M. A. Reshchikov et al., A comprehensive review of ZnO materials and devices, Journal of Applied Physics, vol.98, issue.4, p.041301, 2005.

H. Cho and . Morkoç, A comprehensive review of ZnO materials and devices, J. Appl. Phys, vol.98, p.41301, 2005.

X. L. Chen, B. H. Xu, J. M. Xue, Y. Zhao, C. C. Wei et al.,

. Geng, Boron-doped zinc oxide thin films for large-area solar cells grown by metal organic chemical vapor deposition, Thin Solid Films, vol.515, pp.3753-3759, 2007.

S. Ilican, Y. Caglar, M. Caglar, and F. Yakuphanoglu, Structural, optical and electrical properties of F-doped ZnO nanorod semiconductor thin films deposited by sol?gel process, Applied Surface Science, vol.255, issue.5, pp.2353-2359, 2008.

D. Horwat, M. Mickan, and W. Chamorro, New strategies for the synthesis of ZnO and Al-doped ZnO films by reactive magnetron sputtering at room temperature, physica status solidi (c), vol.13, issue.10-12, pp.951-957, 2016.

M. Mickan, U. Helmersson, H. Rinnert, J. Ghanbaja, D. Muller et al., Room temperature deposition of homogeneous, highly transparent and conductive Al-doped ZnO films by reactive high power impulse magnetron sputtering, Solar Energy Materials and Solar Cells, vol.157, pp.742-749, 2016.

T. Minami, H. Nanto, and S. Takata, Highly conductive and transparent ZnO thin films prepared by r.f. magnetron sputtering in an applied external d.c. magnetic field, Thin Solid Films, vol.124, issue.1, pp.43-47, 1985.

M. Mickan, Deposition of Al-doped ZnO films by high power impulse magnetron sputtering
URL : https://hal.archives-ouvertes.fr/tel-01834670

H. Agura, A. Suzuki, T. Matsushita, T. Aoki, and M. Okuda, Low resistivity transparent conducting Al-doped ZnO films prepared by pulsed laser deposition, Thin Solid Films, vol.445, issue.2, pp.263-267, 2003.

A. Henni, A. Merrouche, L. Telli, and A. Karar, Studies on the structural, morphological, optical and electrical properties of Al-doped ZnO nanorods prepared by electrochemical deposition, Journal of Electroanalytical Chemistry, vol.763, pp.149-154, 2016.

D. B. Potter, D. S. Bhachu, M. J. Powell, J. A. Darr, I. P. Parkin et al., Al-, Ga-, and In-doped ZnO thin films via aerosol assisted CVD for use as transparent conducting oxides, physica status solidi (a), vol.213, issue.5, pp.1346-1352, 2016.

Ü. Özgür, V. Avrutin, and H. Morkoç, Zinc Oxide Materials and Devices Grown by Molecular Beam Epitaxy, Molecular Beam Epitaxy, pp.343-375, 2018.

W. Chamorro, D. Horwat, P. Pigeat, P. Miska, S. Migot et al., Near-room temperature single-domain epitaxy of reactively sputtered ZnO films, Journal of Physics D: Applied Physics, vol.46, issue.23, p.235107, 2013.
URL : https://hal.archives-ouvertes.fr/hal-01285173

C. Peike, W. Phondongnok, T. Kaltenbach, K. Weiss, and M. Koehl, Non-destructive determination of the cross-linking degree of EVA by Raman Spectroscopy, Open Journal of Renewable Energy and Sustainable Development, vol.2014, issue.1, pp.14-21, 2014.

T. Minami, Y. Nishi, T. Miyata, and J. Nomoto, High-Efficiency Oxide Solar Cells with ZnO/Cu2O Heterojunction Fabricated on Thermally Oxidized Cu2O Sheets, Applied Physics Express, vol.4, issue.6, p.062301, 2011.

, Polycrystalline Thin-Film Research: Copper Indium Gallium Diselenide (Fact Sheet), Copper Indium Gallium Diselenide Solar Cells | Photovoltaic Research | NREL, 2011.

K. L. Chopra, P. D. Paulson, and V. Dutta, Thin-film solar cells: an overview, Progress in Photovoltaics: Research and Applications, vol.12, issue.23, pp.69-92, 2004.

N. Amin, T. Isaka, A. Yamada, and M. Konagai, Highly efficient 1?m thick CdTe solar cells with textured TCOs, Sol. Energy Mater. Sol. Cells, vol.67, pp.281-287, 2001.

A. R. Uhl, J. K. Katahara, and H. W. Hillhouse, Molecular-ink route to 13.0% efficient low-bandgap CuIn(S,Se)2 and 14.7% efficient Cu(In,Ga)(S,Se)2 solar cells, Energy & Environmental Science, vol.9, issue.1, pp.130-134, 2016.

. Sci, , vol.9, pp.130-134, 2016.

Y. C. Lin, T. Y. Chen, L. C. Wang, and S. Y. Lien, Comparison of AZO, GZO, and AGZO Thin Films TCOs Applied for a-Si Solar Cells, Journal of The Electrochemical Society, vol.159, issue.6, pp.H599-H604, 2012.

S. Hegedus, B. Sopori, and P. D. Paulson, Optical design and analysis of textured a-Si solar cells, Conference Record of the Twenty-Ninth IEEE Photovoltaic Specialists Conference, 2002., pp.1122-1125

P. Reinhard, F. Pianezzi, L. Kranz, S. Nishiwaki, A. Chiril? et al., Flexible Cu(In,Ga)Se2 solar cells with reduced absorber thickness, Progress in Photovoltaics: Research and Applications, vol.23, issue.3, pp.281-289, 2013.

M. G. Panthani, J. M. Kurley, R. W. Crisp, T. C. Dietz, T. Ezzyat et al., High Efficiency Solution Processed Sintered CdTe Nanocrystal Solar Cells: The Role of Interfaces, Nano Letters, vol.14, issue.2, pp.670-675, 2014.

T. Minami, Y. Nishi, and T. Miyata, Heterojunction solar cell with 6% efficiency based on an n-type aluminum?gallium?oxide thin film and p-type sodium-doped Cu2O sheet, Applied Physics Express, vol.8, issue.2, p.022301, 2015.

Y. Ievskaya, R. L. Hoye, A. Sadhanala, K. P. Musselman, and J. L. Macmanus-driscoll, Fabrication of ZnO/Cu2O heterojunctions in atmospheric conditions: Improved interface quality and solar cell performance, Solar Energy Materials and Solar Cells, vol.135, pp.43-48, 2015.

M. Pavan, S. Rühle, A. Ginsburg, D. A. Keller, H. Barad et al., TiO2/Cu2O all-oxide heterojunction solar cells produced by spray pyrolysis, Solar Energy Materials and Solar Cells, vol.132, pp.549-556, 2015.

A. Y. Martins, A. Anderson, E. Zaban, and . Fortunato, TiO2/Cu2O all-oxide heterojunction solar cells produced by spray pyrolysis, Sol. Energy Mater. Sol. Cells, vol.132, pp.549-556, 2015.

C. Zuo and L. Ding, Solution-Processed Cu2O and CuO as Hole Transport Materials for Efficient Perovskite Solar Cells, Small, vol.11, issue.41, pp.5528-5532, 2015.

Ø. Nordseth, R. Kumar, K. Bergum, L. Fara, S. E. Foss et al., Optical Analysis of a ZnO/Cu<sub>2</sub>O Subcell in a Silicon-Based Tandem Heterojunction Solar Cell, Green and Sustainable Chemistry, vol.07, issue.01, pp.57-69, 2017.

A. Mittiga, E. Salza, F. Sarto, M. Tucci, and R. Vasanthi, Heterojunction solar cell with 2% efficiency based on a Cu2O substrate, Applied Physics Letters, vol.88, issue.16, p.163502, 2006.

Y. Nishi, T. Miyata, and T. Minami, The impact of heterojunction formation temperature on obtainable conversion efficiency in n-ZnO/p-Cu2O solar cells, Thin Solid Films, vol.528, pp.72-76, 2013.

T. Minami, Y. Nishi, and T. Miyata, Cu2O-based solar cells using oxide semiconductors, Journal of Semiconductors, vol.37, issue.1, p.014002, 2016.

K. P. Musselman, A. Marin, L. Schmidt-mende, and J. L. Macmanus-driscoll, Incompatible Length Scales in Nanostructured Cu2O Solar Cells, Advanced Functional Materials, vol.22, issue.10, pp.2202-2208, 2012.

M. Abd-ellah, J. P. Thomas, L. Zhang, and K. T. Leung, Enhancement of solar cell performance of p-Cu2O/n-ZnO-nanotube and nanorod heterojunction devices, Solar Energy Materials and Solar Cells, vol.152, pp.87-93, 2016.

M. Deo, S. Mujawar, O. Game, A. Yengantiwar, A. Banpurkar et al., Strong photo-response in a flip-chip nanowire p-Cu2O/n-ZnO junction, Nanoscale, vol.3, issue.11, p.4706, 2011.

. Ogale, Strong photo-response in a flip-chip nanowire p-Cu2O/n-ZnO junction, Nanoscale, vol.3, pp.4706-4712, 2011.

K. P. Musselman, A. Wisnet, D. C. Iza, H. C. Hesse, C. Scheu et al., Strong Efficiency Improvements in Ultra-low-Cost Inorganic Nanowire Solar Cells, Advanced Materials, vol.22, issue.35, pp.E254-E258, 2010.

S. Rühle, Tabulated values of the Shockley?Queisser limit for single junction solar cells, Solar Energy, vol.130, pp.139-147, 2016.

C. J. Traverse, R. Pandey, M. C. Barr, and R. R. Lunt, Emergence of highly transparent photovoltaics for distributed applications, Nature Energy, vol.2, issue.11, pp.849-860, 2017.

S. Nandy, A. Banerjee, E. Fortunato, and R. Martins, A Review on Cu<SUB>2</SUB>O and Cu<SUP>I</SUP>-Based <I>p</I>-Type Semiconducting Transparent Oxide Materials: Promising Candidates for New Generation Oxide Based Electronics, Reviews in Advanced Sciences and Engineering, vol.2, issue.4, pp.273-304, 2013.

A. H. El-amin, Investigation of semitransparent Cu2O/ZnO based heterostructure diodes for memory and related applications, 2014.

X. Liu, H. Du, P. Wang, T. Lim, and X. W. Sun, A high-performance UV/visible photodetector of Cu2O/ZnO hybrid nanofilms on SWNT-based flexible conducting substrates, J. Mater. Chem. C, vol.2, issue.44, pp.9536-9542, 2014.

H. Tanaka, T. Shimakawa, T. Miyata, H. Sato, and T. Minami, Electrical and optical properties of TCO?Cu2O heterojunction devices, Thin Solid Films, vol.469-470, pp.80-85, 2004.

M. Izaki, T. Shinagawa, K. Mizuno, Y. Ida, M. Inaba et al., Electrochemically constructed p-Cu2O/n-ZnO heterojunction diode for photovoltaic device, Journal of Physics D: Applied Physics, vol.40, issue.11, pp.3326-3329, 2007.

M. Izaki, T. Shinagawa, K. Mizuno, Y. Ida, M. Inaba et al., Electrochemically constructed p-Cu2O/n-ZnO heterojunction diode for photovoltaic device, Journal of Physics D: Applied Physics, vol.40, issue.11, pp.3326-3329, 2007.

T. Minami, Y. Nishi, and T. Miyata, High-Efficiency Cu2O-Based Heterojunction Solar Cells Fabricated Using a Ga2O3Thin Film as N-Type Layer, Applied Physics Express, vol.6, issue.4, p.044101, 2013.

Y. S. Lee, D. Chua, R. E. Brandt, S. C. Siah, J. V. Li et al., Atomic Layer Deposited Gallium Oxide Buffer Layer Enables 1.2 V Open-Circuit Voltage in Cuprous Oxide Solar Cells, Advanced Materials, vol.26, issue.27, pp.4704-4710, 2014.

Z. Zang, Efficiency enhancement of ZnO/Cu2O solar cells with well oriented and micrometer grain sized Cu2O films, Applied Physics Letters, vol.112, issue.4, p.042106, 2018.

K. A. Willets and R. P. Van-duyne, Localized Surface Plasmon Resonance Spectroscopy and Sensing, Annual Review of Physical Chemistry, vol.58, issue.1, pp.267-297, 2007.

M. Losurdo, M. M. Giangregorio, G. V. Bianco, A. Sacchetti, P. Capezzuto et al., Enhanced absorption in Au nanoparticles/a-Si:H/c-Si heterojunction solar cells exploiting Au surface plasmon resonance, Solar Energy Materials and Solar Cells, vol.93, issue.10, pp.1749-1754, 2009.

F. Wu, X. Hu, J. Fan, E. Liu, T. Sun et al., Photocatalytic Activity of Ag/TiO2 Nanotube Arrays Enhanced by Surface Plasmon Resonance and Application in Hydrogen Evolution by Water Splitting, Plasmonics, vol.8, issue.2, pp.501-508, 2012.

Z. Zhong, S. Patskovskyy, P. Bouvrette, J. H. Luong, and A. Gedanken, The Surface Chemistry of Au Colloids and Their Interactions with Functional Amino Acids, The Journal of Physical Chemistry B, vol.108, issue.13, pp.4046-4052, 2004.

Z. Zhong, S. Patskovskyy, P. Bouvrette, J. H. Luong, and A. Gedanken, The Surface Chemistry of Au Colloids and Their Interactions with Functional Amino Acids, The Journal of Physical Chemistry B, vol.108, issue.13, pp.4046-4052, 2004.

, Springer Handbook of Nanomaterials, Springer Handbook of Nanomaterials, 2013.

M. Rycenga, C. M. Cobley, J. Zeng, W. Li, C. H. Moran et al., Controlling the Synthesis and Assembly of Silver Nanostructures for Plasmonic Applications, Chemical Reviews, vol.111, issue.6, pp.3669-3712, 2011.

S. K. Ghosh and T. Pal, Interparticle Coupling Effect on the Surface Plasmon Resonance of Gold Nanoparticles: From Theory to Applications, Chemical Reviews, vol.107, issue.11, pp.4797-4862, 2007.

S. Link and M. A. El-sayed, Size and Temperature Dependence of the Plasmon Absorption of Colloidal Gold Nanoparticles, The Journal of Physical Chemistry B, vol.103, issue.21, pp.4212-4217, 1999.

K. L. Kelly, E. Coronado, L. L. Zhao, and G. C. Schatz, The Optical Properties of Metal Nanoparticles: The Influence of Size, Shape, and Dielectric Environment, ChemInform, vol.34, issue.16, 2003.

B. , , vol.107, pp.668-677, 2003.

E. Hutter and J. H. Fendler, Exploitation of Localized Surface Plasmon Resonance, Advanced Materials, vol.16, issue.19, pp.1685-1706, 2004.

S. Lin, M. Li, E. Dujardin, C. Girard, and S. Mann, One-Dimensional Plasmon Coupling by Facile Self-Assembly of Gold Nanoparticles into Branched Chain Networks, Advanced Materials, vol.17, issue.21, pp.2553-2559, 2005.

J. G. Hinman, A. J. Stork, J. A. Varnell, A. A. Gewirth, and C. J. Murphy, Seed mediated growth of gold nanorods: towards nanorod matryoshkas, Faraday Discussions, vol.191, pp.9-33, 2016.

M. W. Knight, H. Sobhani, P. Nordlander, and N. J. Halas, Photodetection with Active Optical Antennas, Science, vol.332, issue.6030, pp.702-704, 2011.

S. Linic, P. Christopher, and D. B. Ingram, Plasmonic-metal nanostructures for efficient conversion of solar to chemical energy, Nature Materials, vol.10, issue.12, pp.911-921, 2011.

X. Ren, E. Cao, W. Lin, Y. Song, W. Liang et al., Recent advances in surface plasmon-driven catalytic reactions, RSC Advances, vol.7, issue.50, pp.31189-31203, 2017.

J. K. Hyun and L. J. Lauhon, Spatially Resolved Plasmonically Enhanced Photocurrent from Au Nanoparticles on a Si Nanowire, Nano Letters, vol.11, issue.7, pp.2731-2734, 2011.

M. L. Souza, P. Corio, and A. G. Brolo, Cu nanoparticles enable plasmonic-improved silicon photovoltaic devices, Phys. Chem. Chem. Phys, vol.14, pp.15722-15728, 2012.

M. Razeghi, Photodetectors, Fundamentals of Solid State Engineering, pp.545-581

D. Liu, D. Yang, Y. Gao, J. Ma, R. Long et al., Flexible Near-Infrared Photovoltaic Devices Based on Plasmonic Hot-Electron Injection into Silicon Nanowire Arrays, Angewandte Chemie, vol.128, issue.14, pp.4653-4657, 2016.

D. Luo, Q. Liu, C. Xie, W. Wang, X. Wang et al., Mediating Effect of Deteriorated Kidney Function in Comorbidity-related Excess Deaths in COVID-19: A Retrospective Cohort Study, 2020.

. Huang, The Effect of Plasmonic Nanoparticles on the Optoelectronic Characteristics of CdTe Nanowires, Small, vol.10, pp.2645-2652, 2014.

L. Luo, W. Xie, Y. Zou, Y. Yu, F. Liang et al., Surface plasmon propelled high-performance CdSe nanoribbons photodetector, Optics Express, vol.23, issue.10, p.12979, 2015.

M. W. Knight, Y. Wang, A. S. Urban, A. Sobhani, B. Y. Zheng et al., Embedding Plasmonic Nanostructure Diodes Enhances Hot Electron Emission, Nano Letters, vol.13, issue.4, pp.1687-1692, 2013.

. Halas, Embedding Plasmonic Nanostructure Diodes Enhances Hot Electron Emission, Nano Lett, vol.13, pp.1687-1692, 2013.

D. Wang, C. Ge, G. Wu, Z. Li, J. Wang et al.,

. Luo, A sensitive red light nano-photodetector propelled by plasmonic copper nanoparticles, J. Mater. Chem. C, vol.5, pp.1328-1335, 2017.

R. L. Puurunen, Surface chemistry of atomic layer deposition: A case study for the trimethylaluminum/water process, Journal of Applied Physics, vol.97, issue.12, p.121301, 2005.

M. Ritala and M. Leskelä, Atomic layer deposition, Handbook of Thin Films, pp.103-159, 2002.
URL : https://hal.archives-ouvertes.fr/hal-01289765

R. W. Johnson, A. Hultqvist, and S. F. Bent, A brief review of atomic layer deposition: from fundamentals to applications, Materials Today, vol.17, issue.5, pp.236-246, 2014.

Z. Zhu, E. Salmi, and S. Virtanen, Residual stress study of thin films deposited by atomic layer deposition, 2017 IEEE 12th International Conference on ASIC (ASICON), pp.233-236, 2017.

A. Yamada, B. Sang, and M. Konagai, Atomic layer deposition of ZnO transparent conducting oxides, Appl. Surf. Sci, vol.112, issue.96, pp.1022-1029, 1997.

L. Lamagna, C. Wiemer, M. Perego, S. Spiga, J. Rodríguez et al., Mechanisms for Substrate-Enhanced Growth during the Early Stages of Atomic Layer Deposition of Alumina onto Silicon Nitride Surfaces, Chemistry of Materials, vol.24, issue.6, pp.1080-1090, 2012.

S. Grillo, S. D. Klejna, and . Elliott, Mechanisms for Substrate-Enhanced Growth during the Early Stages of Atomic Layer Deposition of Alumina onto Silicon Nitride Surfaces

. Mater, , vol.24, pp.1080-1090, 2012.

H. Kim and S. M. Rossnagel, Growth kinetics and initial stage growth during plasma-enhanced Ti atomic layer deposition, Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, vol.20, issue.3, pp.802-808, 2002.

M. Junige, M. Geidel, M. Knaut, M. Albert, and J. W. Bartha, Monitoring atomic layer deposition processes in situ and in real-time by spectroscopic ellipsometry, 2011 Semiconductor Conference Dresden, p.2011, 2011.

. Semicond, . Conf, and . Dresd, , pp.1-4, 2011.

A. Satta, J. Schuhmacher, C. M. Whelan, W. Vandervorst, S. H. Brongersma et al., Growth mechanism and continuity of atomic layer deposited TiN films on thermal SiO2, Journal of Applied Physics, vol.92, issue.12, pp.7641-7646, 2002.

S. Jeong and E. S. Aydil, Heteroepitaxial growth of Cu2O thin film on ZnO by metal organic chemical vapor deposition, Journal of Crystal Growth, vol.311, issue.17, pp.4188-4192, 2009.

B. Lecohier, B. Calpini, J. ?. Philippoz, T. Stumm, and H. Van-den-bergh, Selective low pressure chemical vapor deposition of copper: Effect of added water vapor in hydrogen or helium carrier gas, Applied Physics Letters, vol.60, issue.25, pp.3114-3116, 1992.

N. Awaya and Y. Arita, Accelerated-Deposition Rate and High-Quality Film Copper Chemical Vapor Deposition Using a Water Vapor Addition to a Hydrogen and Cu(HFA)2Reaction System, Japanese Journal of Applied Physics, vol.32, issue.Part 1, No. 9A, pp.3915-3919, 1993.

N. Awaya and Y. Arita, Accelerated-Deposition Rate and High-Quality Film Copper Chemical Vapor Deposition Using a Water Vapor Addition to a Hydrogen and Cu(HFA)2Reaction System, Japanese Journal of Applied Physics, vol.32, issue.Part 1, No. 9A, pp.3915-3919, 1993.

D. Depla, . Magnetrons, D. Sputtering, and . Depla, Modelling of Reactive Sputter Deposition of Oxynitrides, Metallic Oxynitride Thin Films by Reactive Sputtering and Related Deposition Methods: Process, Properties and Applications, pp.3-26, 2013.

A. Billard and F. Perry, Pulvérisation cathodique magnétron, Tech. Ing. Matér. Métalliques, 2005.

A. Billard, F. Perry, and C. Frantz, Stable and unstable conditions of the sputtering mode by modulating at low frequency the current of a magnetron discharge, Surface and Coatings Technology, vol.94-95, pp.345-351, 1997.

I. Safi, Recent aspects concerning DC reactive magnetron sputtering of thin films: a review, Surface and Coatings Technology, vol.127, issue.2-3, pp.203-218, 2000.

D. Horwat and A. Billard, Effects of substrate position and oxygen gas flow rate on the properties of ZnO: Al films prepared by reactive co-sputtering, Thin Solid Films, vol.515, issue.13, pp.5444-5448, 2007.

Y. Wang, J. Ghanbaja, F. Soldera, S. Migot, P. Boulet et al., Tuning the structure and preferred orientation in reactively sputtered copper oxide thin films, Applied Surface Science, vol.335, pp.85-91, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01293639

P. , Tuning the structure and preferred orientation in reactively sputtered copper oxide thin films, Appl. Surf. Sci, vol.335, pp.85-91, 2015.

V. K. Pecharsky and P. Y. Zavalij, Fundamentals of Powder Diffraction and Structural Characterization of Materials, Fundamentals of powder diffraction and structural characterization of materials, 2005.

J. I. Langford and A. J. Wilson, Scherrer after sixty years: A survey and some new results in the determination of crystallite size, Journal of Applied Crystallography, vol.11, issue.2, pp.102-113, 1978.

M. Ohring, Thin-Film Evaporation Processes, Materials Science of Thin Films, pp.95-144, 2002.

C. De-melo, S. Larramendi, V. Torres-costa, J. Santoyo-salazar, M. Behar et al., Enhanced ZnTe infiltration in porous silicon by Isothermal Close Space Sublimation, Microporous and Mesoporous Materials, vol.188, pp.93-98, 2014.

H. Fujiwara, Ultraviolet reflections: Life under a thinning ozone layer Annika Nilsson. John Wiley & Sons Ltd., West Sussex, England, 1996. 152 pp. (ISBN 0-471-958433); £17.99 softcover, Environment International, vol.23, issue.2, p.267, 1997.

E. A. Davis and N. F. Mott, Conduction in non-crystalline systems V. Conductivity, optical absorption and photoconductivity in amorphous semiconductors, Philosophical Magazine, vol.22, issue.179, pp.0903-0922, 1970.

E. A. Davis and N. F. Mott, Conduction in non-crystalline systems V. Conductivity, optical absorption and photoconductivity in amorphous semiconductors, Philosophical Magazine, vol.22, issue.179, pp.0903-0922, 1970.

J. Orloff, Handbook of charged particle optics, vol.2, 2009.

C. S. Campos, M. A. Vasconcellos, J. C. Trincavelli, and S. Segui, Analytical expression for K -and L -shell cross sections of neutral atoms near ionization threshold by electron impact, J. Phys. B At. Mol. Opt. Phys, vol.40, pp.3835-3841, 2007.

A. J. Garratt-reed, D. C. Bell, and P. Nicholson, Energy-dispersive X-ray analysis in the electron microscope. Bios Scientific Publishers, Ltd., Oxford, U.K. 2003 ISBN 1859961096; paperback; 160 pages; $38.50, Scanning, vol.25, issue.3, pp.162-162, 2006.

F. Hofer, F. P. Schmidt, W. Grogger, and G. Kothleitner, Fundamentals of electron energy-loss spectroscopy, IOP Conference Series: Materials Science and Engineering, vol.109, p.012007, 2016.

V. J. Keast, A. J. Scott, R. Brydson, D. B. Williams, and J. Bruley, Electron energy-loss near-edge structure - a tool for the investigation of electronic structure on the nanometre scale, Journal of Microscopy, vol.203, issue.2, pp.135-175, 2001.

D. B. Williams and C. B. Carter, Transmission electron microscopy: a textbook for materials science, 2008.

J. F. Moulder, W. F. Stickle, P. E. Sobol, K. D. Bomben, J. Chastain et al., Handbook of X-ray Photoelectron Spectroscopy, vol.55344, 1995.

C. Ionescu-zanetti and A. Mechler, Applications of Conductive Atomic Force Microscopy, Microsc. Anal, vol.19, pp.9-11, 2005.

T. Fukuma and M. J. Higgins, Dynamic-Mode AFM in Liquid, Atomic Force Microscopy in Liquid, pp.87-119, 2012.

F. J. Giessibl, Atomic Force Microscopy in Ultrahigh Vacuum, Japanese Journal of Applied Physics, vol.33, issue.Part 1, No. 6B, pp.3726-3734, 1994.

J. M. Mativetsky, Y. Loo, and P. Samorì, Elucidating the nanoscale origins of organic electronic function by conductive atomic force microscopy, J. Mater. Chem. C, vol.2, issue.17, pp.3118-3128, 2014.

L. Heng, D. Tian, L. Chen, J. Su, J. Zhai et al., Local photoelectric conversion properties of titanyl-phthalocyanine (TiOPc) coated aligned ZnO nanorods, Chemical Communications, vol.46, issue.7, p.1162, 2010.

P. Deb, H. Kim, Y. Qin, R. Lahiji, M. Oliver et al., GaN Nanorod Schottky and p?n Junction Diodes, Nano Letters, vol.6, issue.12, pp.2893-2898, 2006.

O. A. Bârsan, G. G. Hoffmann, L. G. Van-der-ven, and G. De-with, Quantitative Conductive Atomic Force Microscopy on Single-Walled Carbon Nanotube-Based Polymer Composites, ACS Applied Materials & Interfaces, vol.8, issue.30, pp.19701-19708, 2016.

C. De-melo, M. Jullien, Y. Battie, A. En-naciri, J. Ghanbaja et al., Tunable Localized Surface Plasmon Resonance and Broadband Visible Photoresponse of Cu Nanoparticles/ZnO Surfaces, ACS Applied Materials & Interfaces, vol.10, issue.47, pp.40958-40965, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02899428

L. S. Pingree, O. G. Reid, and D. S. Ginger, Imaging the Evolution of Nanoscale Photocurrent Collection and Transport Networks during Annealing of Polythiophene/Fullerene Solar Cells, Nano Letters, vol.9, issue.8, pp.2946-2952, 2009.

L. S. Pingree, O. G. Reid, and D. S. Ginger, Imaging the Evolution of Nanoscale Photocurrent Collection and Transport Networks during Annealing of Polythiophene/Fullerene Solar Cells, Nano Letters, vol.9, issue.8, pp.2946-2952, 2009.

H. Wiley and N. J. , Solar Cells and their Applications, Solar cells and their applications, 2010.

P. S. Priambodo, D. Sukoco, W. Purnomo, H. Sudibyo, and D. Hartanto, Electric Energy Management and Engineering in Solar Cell System, in: Sol. Cells -Res. Appl. Perspect, 2013.

J. Mulkens, M. Hanna, H. Wei, V. Vaenkatesan, H. Megens et al., Overlay and edge placement control strategies for the 7nm node using EUV and ArF lithography, Extreme Ultraviolet (EUV) Lithography VI, p.94221, 2015.

R. Vallat, R. Gassilloud, O. Salicio, K. El-hajjam, G. Molas et al., Area selective deposition of TiO2 by intercalation of plasma etching cycles in PEALD process: A bottom up approach for the simplification of 3D integration scheme, Journal of Vacuum Science & Technology A, vol.37, issue.2, p.020918, 2019.
URL : https://hal.archives-ouvertes.fr/hal-02108939

R. Vallat, R. Gassilloud, O. Salicio, K. El-hajjam, G. Molas et al., Area selective deposition of TiO2 by intercalation of plasma etching cycles in PEALD process: A bottom up approach for the simplification of 3D integration scheme, Journal of Vacuum Science & Technology A, vol.37, issue.2, p.020918, 2019.
URL : https://hal.archives-ouvertes.fr/hal-02108939

R. Chen, H. Kim, P. C. Mcintyre, D. W. Porter, and S. F. Bent, Achieving area-selective atomic layer deposition on patterned substrates by selective surface modification, Applied Physics Letters, vol.86, issue.19, p.191910, 2005.

A. Mameli, M. J. Merkx, B. Karasulu, F. Roozeboom, W. (. Kessels et al., Area-Selective Atomic Layer Deposition of SiO2 Using Acetylacetone as a Chemoselective Inhibitor in an ABC-Type Cycle, ACS Nano, vol.11, issue.9, pp.9303-9311, 2017.

M. H. Park, Y. J. Jang, H. M. Sung-suh, and M. M. Sung, Selective Atomic Layer Deposition of Titanium Oxide on Patterned Self-Assembled Monolayers Formed by Microcontact Printing, Langmuir, vol.20, issue.6, pp.2257-2260, 2004.

F. S. Hashemi, B. R. Birchansky, and S. F. Bent, Selective Deposition of Dielectrics: Limits and Advantages of Alkanethiol Blocking Agents on Metal-Dielectric Patterns, vol.8, pp.33264-33272, 2016.

S. Seo, B. C. Yeo, S. S. Han, C. M. Yoon, J. Y. Yang et al., Reaction Mechanism of Area-Selective Atomic Layer Deposition for Al2O3 Nanopatterns, ACS Applied Materials & Interfaces, vol.9, issue.47, pp.41607-41617, 2017.

S. Seo, B. C. Yeo, S. S. Han, C. M. Yoon, J. Y. Yang et al., Reaction Mechanism of Area-Selective Atomic Layer Deposition for Al2O3 Nanopatterns, ACS Applied Materials & Interfaces, vol.9, issue.47, pp.41607-41617, 2017.

R. Chen, H. Kim, P. C. Mcintyre, and S. F. Bent, Self-assembled monolayer resist for atomic layer deposition of HfO2 and ZrO2 high-? gate dielectrics, Applied Physics Letters, vol.84, issue.20, pp.4017-4019, 2004.

H. Lee, W. Kim, J. W. Lee, J. Kim, K. Heo et al., High Quality Area-Selective Atomic Layer Deposition Co Using Ammonia Gas as a Reactant, Journal of The Electrochemical Society, vol.157, issue.1, p.D10, 2010.

W. Kim, H. Lee, K. Heo, Y. K. Lee, T. Chung et al., Atomic Layer Deposition of Ni Thin Films and Application to Area-Selective Deposition, Journal of The Electrochemical Society, vol.158, issue.1, p.D1, 2011.

J. Hong, D. W. Porter, R. Sreenivasan, P. C. Mcintyre, and S. F. Bent, ALD Resist Formed by Vapor-Deposited Self-Assembled Monolayers, Langmuir, vol.23, issue.3, pp.1160-1165, 2007.

S. L. Cohen, M. Liehr, and S. Kasi, Mechanisms of copper chemical vapor deposition, Applied Physics Letters, vol.60, issue.1, pp.50-52, 1992.

P. C. Lemaire, M. King, and G. N. Parsons, Understanding inherent substrate selectivity during atomic layer deposition: Effect of surface preparation, hydroxyl density, and metal oxide composition on nucleation mechanisms during tungsten ALD, The Journal of Chemical Physics, vol.146, issue.5, p.052811, 2017.

D. Horwat, M. Dehmas, A. Gutierrez, J. Pierson, A. Anders et al., ChemInform Abstract: Efficient, Low Cost Synthesis of Sodium Platinum Bronze NaxPt3O4., ChemInform, vol.43, issue.41, pp.no-no, 2012.

E. Endrino, Low Cost Synthesis of Sodium Platinum Bronze NaXPt3O4

. Mater, , vol.24, pp.2429-2432, 2012.

K. Sivaramakrishnan, N. D. Theodore, J. F. Moulder, and T. L. Alford, The role of copper in ZnO/Cu/ZnO thin films for flexible electronics, Journal of Applied Physics, vol.106, issue.6, p.063510, 2009.

M. Behrens, F. Studt, I. Kasatkin, S. Kuhl, M. Havecker et al., The Active Site of Methanol Synthesis over Cu/ZnO/Al2O3 Industrial Catalysts, Science, vol.336, issue.6083, pp.893-897, 2012.

T. Lunkenbein, J. Schumann, M. Behrens, R. Schlögl, and M. G. Willinger, Formation of a ZnO Overlayer in Industrial Cu/ZnO/Al2O3Catalysts Induced by Strong Metal-Support Interactions, Angewandte Chemie, vol.127, issue.15, pp.4627-4631, 2015.

S. S. Jeong, A. Mittiga, E. Salza, A. Masci, and S. Passerini, Electrodeposited ZnO/Cu2O heterojunction solar cells, Electrochimica Acta, vol.53, issue.5, pp.2226-2231, 2008.

K. Tominaga, T. Yuasa, M. Kume, and O. Tada, Influence of Energetic Oxygen Bombardment on Conductive ZnO Films, Japanese Journal of Applied Physics, vol.24, issue.Part 1, No. 8, pp.944-949, 1985.

M. Jullien, D. Horwat, F. Manzeh, R. Escobar-galindo, P. H. Bauer et al., Influence of the nanoscale structural features on the properties and electronic structure of Al-doped ZnO thin films: An X-ray absorption study, Solar Energy Materials and Solar Cells, vol.95, issue.8, pp.2341-2346, 2011.

. Endrino, Influence of the nanoscale structural features on the properties and electronic structure of Al-doped ZnO thin films: An X-ray absorption study, Sol. Energy Mater. Sol. Cells, vol.95, pp.2341-2346, 2011.

J. Gan, S. Gorantla, H. N. Riise, Ø. S. Fjellvåg, S. Diplas et al., Structural properties of Cu2O epitaxial films grown on c-axis single crystal ZnO by magnetron sputtering, Applied Physics Letters, vol.108, issue.15, p.152110, 2016.

J. Narayan and B. C. Larson, Domain epitaxy: A unified paradigm for thin film growth, Journal of Applied Physics, vol.93, issue.1, pp.278-285, 2003.

A. Trampert and K. H. Ploog, Heteroepitaxy of Large-Misfit Systems: Role of Coincidence Lattice, Cryst. Res. Technol, vol.35, pp.793-806, 2000.

P. , High-resolution characterization of the forbidden Si 200 and Si 222 reflections, Journal of Applied Crystallography, vol.48, issue.2, pp.528-532, 2015.

A. E. Gunnaes, S. Gorantla, O. M. Løvvik, J. Gan, P. A. Carvalho et al.,

K. Monakhov, I. T. Bergum, S. Jensen, and . Diplas, Epitaxial Strain-Induced Growth of CuO at Cu2O/ZnO Interfaces, J. Phys. Chem. C, vol.120, pp.23552-23558, 2016.

S. L. Cohen, M. Liehr, and S. Kasi, Selectivity in copper chemical vapor deposition, Applied Physics Letters, vol.60, issue.13, pp.1585-1587, 1992.

N. U. Alvi, S. Hussain, J. Jensen, O. Nur, and M. Willander, Influence of helium-ion bombardment on the optical properties of ZnO nanorods/p-GaN light-emitting diodes, Nanoscale Research Letters, vol.6, issue.1, p.628, 2011.

L. J. Brillson, H. L. Mosbacker, D. L. Doutt, Y. Dong, Z. Fang et al., Nanoscale depth-resolved cathodoluminescence spectroscopy of ZnO surfaces and metal interfaces, Superlattices and Microstructures, vol.45, issue.4-5, pp.206-213, 2009.

S. A. French, A. A. Sokol, S. T. Bromley, C. R. Catlow, and P. Sherwood, Identification and Characterization of Active Sites and Their Catalytic Processes-the Cu/ZnO Methanol Catalyst, Top. Catal, vol.24, pp.161-172, 2003.

K. Henzler, A. Heilemann, J. Kneer, P. Guttmann, H. Jia et al., Investigation of reactions between trace gases and functional CuO nanospheres and octahedrons using NEXAFS-TXM imaging, Scientific Reports, vol.5, issue.1, p.17729, 2015.

W. Chamorro, T. S. Shyju, P. Boulet, S. Migot, J. Ghanbaja et al., Role of Cu+ on ZnS:Cu p-type semiconductor films grown by sputtering: influence of substitutional Cu in the structural, optical and electronic properties, RSC Advances, vol.6, issue.49, pp.43480-43488, 2016.

Y. Wang, S. Lany, J. Ghanbaja, Y. Fagot-revurat, Y. P. Chen et al., Electronic structures ofCu2O,Cu4O3, and CuO: A joint experimental and theoretical study, Physical Review B, vol.94, issue.24, p.245418, 2016.

R. D. Leapman, L. A. Grunes, and P. L. Fejes, Study of theL23edges in the3dtransition metals and their oxides by electron-energy-loss spectroscopy with comparisons to theory, Physical Review B, vol.26, issue.2, pp.614-635, 1982.

A. B. Gurevich, B. E. Bent, A. V. Teplyakov, and J. G. Chen, A NEXAFS investigation of the formation and decomposition of CuO and Cu2O thin films on Cu(100), Surface Science, vol.442, issue.1, pp.L971-L976, 1999.

R. Stanley, Plasmonics in the mid-infrared, Nature Photonics, vol.6, issue.7, pp.409-411, 2012.

T. Jiang, C. Jia, L. Zhang, S. He, Y. Sang et al., Gold and gold?palladium alloy nanoparticles on heterostructured TiO2nanobelts as plasmonic photocatalysts for benzyl alcohol oxidation, Nanoscale, vol.7, issue.1, pp.209-217, 2015.

C. Chou and F. Chen, Plasmonic nanostructures for light trapping in organic photovoltaic devices, Nanoscale, vol.6, issue.15, p.8444, 2014.

P. Liu, H. Wang, X. Li, M. Rui, and H. Zeng, Localized surface plasmon resonance of Cu nanoparticles by laser ablation in liquid media, RSC Advances, vol.5, issue.97, pp.79738-79745, 2015.

Z. Han, L. Wei, Z. Zhang, X. Zhang, H. Pan et al., Visible-Light Photocatalytic Application of Hierarchical Au-ZnO Flower-Rod Heterostructures via Surface Plasmon Resonance, Plasmonics, vol.8, issue.2, pp.1193-1202, 2013.

N. Gogurla, A. K. Sinha, S. Santra, S. Manna, and S. K. Ray, Multifunctional Au-ZnO Plasmonic Nanostructures for Enhanced UV Photodetector and Room Temperature NO Sensing Devices, Scientific Reports, vol.4, issue.1, pp.6483-6492, 2014.

G. H. Chan, J. Zhao, E. M. Hicks, G. C. Schatz, and R. P. Van-duyne, Plasmonic Properties of Copper Nanoparticles Fabricated by Nanosphere Lithography, Nano Letters, vol.7, issue.7, pp.1947-1952, 2007.

C. Wei and Q. Liu, Shape-, size-, and density-tunable synthesis and optical properties of copper nanoparticles, CrystEngComm, vol.19, issue.24, pp.3254-3262, 2017.

A. Khan, A. Rashid, R. Younas, and R. Chong, A chemical reduction approach to the synthesis of copper nanoparticles, International Nano Letters, vol.6, issue.1, pp.21-26, 2015.

C. De-melo, M. Jullien, J. Ghanbaja, F. Montaigne, J. Pierson et al., Local Structure and Point-Defect-Dependent Area-Selective Atomic Layer Deposition Approach for Facile Synthesis of p-Cu2O/n-ZnO Segmented Nanojunctions, ACS Applied Materials & Interfaces, vol.10, issue.43, pp.37671-37678, 2018.

C. De-melo, M. Jullien, J. Ghanbaja, F. Montaigne, J. Pierson et al., Local Structure and Point-Defect-Dependent Area-Selective Atomic Layer Deposition Approach for Facile Synthesis of p-Cu2O/n-ZnO Segmented Nanojunctions, ACS Applied Materials & Interfaces, vol.10, issue.43, pp.37671-37678, 2018.

P. Shrestha, D. Gu, N. Tran, K. Tapily, H. Baumgart et al., Investigation of Volmer-Weber Growth during the Nucleation Phase of ALD Platinum Thin Films and Template Based Platinum Nanotubes, ECS Transactions, vol.33, issue.2, pp.127-134, 2019.

R. L. Puurunen and W. Vandervorst, Island growth as a growth mode in atomic layer deposition: A phenomenological model, Journal of Applied Physics, vol.96, issue.12, pp.7686-7695, 2004.

J. W. De-vries and F. J. Broeder, Influence of interface scattering on the resistance of polycrystalline Au/Pd multilayered thin films, J. Phys. F Met. Phys, vol.18, pp.2635-2647, 1988.

D. Gall, Electron mean free path in elemental metals, Journal of Applied Physics, vol.119, issue.8, p.085101, 2016.

Y. Battie, A. En-naciri, and M. Vergnat, Plasmonic and metallic optical properties of Au/SiO2 metal-insulator films, Journal of Applied Physics, vol.122, issue.21, p.213101, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02168859

. Au, SiO2 metal-insulator films, J. Appl. Phys, vol.122, p.213101, 2017.

R. S. Moirangthem, Y. Chang, and P. Wei, Ellipsometry study on gold-nanoparticle-coated gold thin film for biosensing application, Biomedical Optics Express, vol.2, issue.9, p.2569, 2011.

B. M. Reinhard, M. Siu, H. Agarwal, A. P. Alivisatos, and J. Liphardt, Calibration of Dynamic Molecular Rulers Based on Plasmon Coupling between Gold Nanoparticles, Nano Letters, vol.5, issue.11, pp.2246-2252, 2005.

J. J. Mock, M. Barbic, D. R. Smith, D. A. Schultz, and S. A. Schultz, Shape effects in plasmon resonance of individual colloidal silver nanoparticles, The Journal of Chemical Physics, vol.116, issue.15, pp.6755-6759, 2002.

J. Vieaud, J. Gao, J. Cane, M. Stchakovsky, A. En-naciri et al., Gold Nanoparticle Chains: Synthesis, Characterization, and Modeling Using Spectroscopic Ellipsometry, The Journal of Physical Chemistry C, vol.122, issue.22, pp.11973-11984, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02348481

A. Ziashahabi, T. Ghodselahi, and M. Heidari-saani, Localized Surface Plasmon Resonance properties of copper nano-clusters: A theoretical study of size dependence, Journal of Physics and Chemistry of Solids, vol.74, issue.7, pp.929-933, 2013.

A. Khan, M. Hussain, M. A. Abbasi, Z. H. Ibupoto, O. Nur et al., Study of transport properties of copper/zinc-oxide-nanorods-based Schottky diode fabricated on textile fabric, Semiconductor Science and Technology, vol.28, issue.12, p.125006, 2013.

L. J. Brillson and Y. Lu, ZnO Schottky barriers and Ohmic contacts, Journal of Applied Physics, vol.109, issue.12, p.121301, 2011.

K. Muhammed-shafi, R. Vinodkumar, R. J. Bose, V. N. Uvais, and V. P. Mahadevan-pillai, Effect of Cu on the microstructure and electrical properties of Cu/ZnO thin films, Journal of Alloys and Compounds, vol.551, pp.243-248, 2013.

H. B. Michaelson, The work function of the elements and its periodicity, Journal of Applied Physics, vol.48, issue.11, pp.4729-4733, 1977.

I. Lange, S. Reiter, M. Pätzel, A. Zykov, A. Nefedov et al., Tuning the Work Function of Polar Zinc Oxide Surfaces using Modified Phosphonic Acid Self?Assembled Monolayers, Advanced Functional Materials, vol.24, issue.44, pp.7014-7024, 2014.

C. Kowarik, G. Wöll, D. Heimel, and . Neher, Tuning the Work Function of Polar Zinc Oxide Surfaces using Modified Phosphonic Acid Self-Assembled Monolayers, Adv. Funct

I. Lange, S. Reiter, M. Pätzel, A. Zykov, A. Nefedov et al., Tuning the Work Function of Polar Zinc Oxide Surfaces using Modified Phosphonic Acid Self?Assembled Monolayers, Advanced Functional Materials, vol.24, issue.44, pp.7014-7024, 2014.

M. Wei, C. Li, X. Deng, and H. Deng, Surface Work Function of Transparent Conductive ZnO Films, Energy Procedia, vol.16, pp.76-80, 2012.

A. Kahn, Fermi level, work function and vacuum level, Materials Horizons, vol.3, issue.1, pp.7-10, 2016.

L. Hu, L. Zhu, H. He, Y. Guo, G. Pan et al., Colloidal chemically fabricated ZnO : Cu-based photodetector with extended UV-visible detection waveband, Nanoscale, vol.5, issue.20, p.9577, 2013.

E. Kus¸demir, D. Özkendir, V. F?rat, and C. Çelebi, Epitaxial graphene contact electrode for silicon carbide based ultraviolet photodetector, Journal of Physics D: Applied Physics, vol.48, issue.9, p.095104, 2015.

S. Samanta, K. Das, and A. K. Raychaudhuri, Junction Effect on Transport Properties of a Single Si Nanowire Metal?Semiconductor?Metal Device, IEEE Transactions on Nanotechnology, vol.12, issue.6, pp.1089-1093, 2013.

J. Osvald, Back-to-back connected asymmetric Schottky diodes with series resistance as a single diode, physica status solidi (a), vol.212, issue.12, pp.2754-2758, 2015.

W. M. Sachtler, G. J. Dorgelo, and A. A. Holscher, The work function of gold, Surf. Sci, vol.5, issue.66, pp.90083-90088, 1966.

E. H. Rhoderick, Metal-semiconductor contacts, IEE Proceedings I Solid State and Electron Devices, vol.129, issue.1, p.1, 1982.

I. Goykhman, U. Sassi, B. Desiatov, N. Mazurski, S. Milana et al., On-Chip Integrated, Silicon?Graphene Plasmonic Schottky Photodetector with High Responsivity and Avalanche Photogain, Nano Letters, vol.16, issue.5, pp.3005-3013, 2016.

N. Kouklin, Cu-Doped ZnO Nanowires for Efficient and Multispectral Photodetection Applications, Advanced Materials, vol.20, issue.11, pp.2190-2194, 2008.

T. Zhang, G. Wu, J. Wang, Y. Yu, D. Zhang et al., A sensitive ultraviolet light photodiode based on graphene-on-zinc oxide Schottky junction, Nanophotonics, vol.6, issue.5, pp.1073-1081, 2016.

A. Altaweel, A. Imam, J. Ghanbaja, D. Mangin, P. Miska et al., Fast synthesis of ultrathin ZnO nanowires by oxidation of Cu/Zn stacks in low-pressure afterglow, Nanotechnology, vol.28, issue.8, p.085602, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02106043

K. Kardarian, D. Nunes, P. Maria-sberna, A. Ginsburg, D. A. Keller et al., Effect of Mg doping on Cu 2 O thin films and their behavior on the TiO 2 /Cu 2 O heterojunction solar cells, Solar Energy Materials and Solar Cells, vol.147, pp.27-36, 2016.

Y. Nishi, T. Miyata, and T. Minami, Effect of inserting a thin buffer layer on the efficiency in n-ZnO/p-Cu2O heterojunction solar cells, Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, vol.30, issue.4, p.04D103, 2012.

L. Olivieri, E. Caamaño-martin, F. .olivieri, and J. Neila, Integral energy performance characterization of semi-transparent photovoltaic elements for building integration under real operation conditions, Energy and Buildings, vol.68, pp.280-291, 2014.

T. Ito, T. Kawashima, H. Yamaguchi, T. Masumi, and S. Adachi, Optical Properties of Cu2O Studied by Spectroscopic Ellipsometry, Journal of the Physical Society of Japan, vol.67, issue.6, pp.2125-2131, 1998.

H. Liu, F. Zeng, Y. Lin, G. Wang, and F. Pan, Correlation of oxygen vacancy variations to band gap changes in epitaxial ZnO thin films, Applied Physics Letters, vol.102, issue.18, p.181908, 2013.

L. Valladares, D. H. Salinas, A. B. Dominguez, D. A. Najarro, and S. I. ,

T. Khondaker, C. H. Mitrelias, J. A. Barnes, Y. Aguiar, and . Majima, Crystallization and electrical resistivity of Cu2O and CuO obtained by thermal oxidation of Cu thin films on SiO2/Si substrates, Thin Solid Films, vol.520, pp.6368-6374, 2012.

C. Chu, H. Lu, C. Lo, C. Lai, and Y. Wang, Physical properties of copper oxide thin films prepared by dc reactive magnetron sputtering under different oxygen partial pressures, Physica B: Condensed Matter, vol.404, issue.23-24, pp.4831-4834, 2009.

W. S. Gunter-wyszecki and . Stiles, Color Science: Concepts and Methods, Quantitative Data and Formulae, 1982.

T. Dimopoulos, A. Pei?, S. Abermann, M. Postl, E. J. List-kratochvil et al., Effect of thermal annealing in vacuum on the photovoltaic properties of electrodeposited Cu2O-absorber solar cell, EPJ Photovoltaics, vol.5, p.50301, 2014.

S. Jeong, S. H. Song, K. Nagaich, S. A. Campbell, and E. S. Aydil, An analysis of temperature dependent current?voltage characteristics of Cu2O?ZnO heterojunction solar cells, Thin Solid Films, vol.519, issue.19, pp.6613-6619, 2011.

J. Lv, J. Xu, M. Zhao, P. Yan, S. Mao et al., Effect of seed layer on optical properties and visible photoresponse of ZnO/Cu2O composite thin films, Ceramics International, vol.41, issue.10, pp.13983-13987, 2015.

M. Saifullah, S. Ahn, J. Gwak, S. Ahn, K. Kim et al., Development of semitransparent CIGS thin-film solar cells modified with a sulfurized-AgGa layer for building applications, Journal of Materials Chemistry A, vol.4, issue.27, pp.10542-10551, 2016.

Y. Liu, H. K. Turley, J. R. Tumbleston, E. T. Samulski, and R. Lopez, Minority carrier transport length of electrodeposited Cu2O in ZnO/Cu2O heterojunction solar cells, Applied Physics Letters, vol.98, issue.16, p.162105, 2011.

T. Gershon, K. P. Musselman, A. Marin, R. H. Friend, and J. L. Macmanus-driscoll, Thin-film ZnO/Cu2O solar cells incorporating an organic buffer layer, Solar Energy Materials and Solar Cells, vol.96, pp.148-154, 2012.

P. Würfel, Physics of Solar Cells, 2005.

P. Lin, X. Chen, X. Yan, Z. Zhang, H. Yuan et al., Enhanced photoresponse of Cu2O/ZnO heterojunction with piezo-modulated interface engineering, Nano Research, vol.7, issue.6, pp.860-868, 2014.

R. Place, , vol.44, p.50, 1989.

H. Ai, Can minority language proficiency pay: a study on the return on English-Spanish fluent bilingualism in South Florida, Language skills: Spanish (mother tong)

. Msc, Dispatches from Cuba: Physics at the University of Havana, Physics Today, 2016.

, Dispatches from Cuba: Physics at the University of Havana, Physics Today, 2016.

R. P. Wijesundera, M. Hidaka, K. Koga, M. Sakai, and W. Siripala, Growth and characterisation of potentiostatically electrodeposited Cu2O and Cu thin films, Thin Solid Films, vol.500, issue.1-2, pp.241-246, 2006.

, Townes, Charles Hard, (28 July 1915?27 Jan. 2015), University Professor of Physics, 1967?86, Professor in the Graduate School, since 1994, University of California, USA, Junior Assistant Professor and Researcher. School of Physics, 2007.

, Optical Properties, Properties of Group-IV, III-V and II-VI Semiconductors, pp.211-281, 2005.

O. De-melo, G. Santana, G. Contreras, P. Gutierrez, and C. De-melo, France Erasmus mundus fellowship 2015 to participate in the DocMASE Doctoral Programme. National Award of the Sciences Academy of Cuba, 2015.

M. Halperin, Return to Havana, 8th Symposium of the Cuban Physics Society, 2020.

D. H. Funkenstein, Admission of graduate students to the second year of medical school, Academic Medicine, vol.45, issue.11, pp.939-40, 1970.

C. De-melo, M. Jullien, Y. Battie, A. En-naciri, J. Ghanbaja et al., Tunable Localized Surface Plasmon Resonance and Broadband Visible Photoresponse of Cu Nanoparticles/ZnO Surfaces, ACS Applied Materials & Interfaces, vol.10, issue.47, pp.40958-40965, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02899428

N. Rigoni, A. Almqvist, S. Vomiero, F. Migot, D. Mücklich et al., Self-powered visible photoresponse of semi-transparent p-Cu2O/n-ZnO heterojunctions, ACS Appl. Nano Mater

C. De-melo, M. Jullien, Y. Battie, A. En-naciri, J. Ghanbaja et al., Tunable Localized Surface Plasmon Resonance and Broadband Visible Photoresponse of Cu Nanoparticles/ZnO Surfaces, ACS Applied Materials & Interfaces, vol.10, issue.47, pp.40958-40965, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02899428

N. Rigoni, A. Almqvist, S. Vomiero, F. Migot, D. Mücklich et al., Tunable Localized Surface Plasmon Resonance and Broadband Visible Photo-response of Cu Nanoparticles/ZnO Surfaces, ACS Applied Materials & Interfaces, vol.10, p.40958, 2018.

C. De-melo, M. Jullien, J. Ghanbaja, F. Montaigne, J. F. Pierson et al., Local Structure and Point-Defect-Dependent Area-Selective Atomic Layer Deposition Approach for Facile Synthesis of p-Cu2O/n-ZnO Segmented Nanojunctions, ACS Applied Materials & Interfaces, vol.10, issue.43, pp.37671-37678, 2018.

A. Almqvist, F. Vomiero, D. Mücklich, and . Horwat, Local structure and point defects-dependent Area-Selective Atomic Layer Deposition Approach for Facile Synthesis of p-Cu2O/n-ZnO Segmented Nano-junctions, ACS Applied Materials & Interfaces, vol.10, p.37671, 2018.

O. De-melo, M. Sánchez, A. Borroto, C. De-melo, B. J. García et al., WTe2 Synthesis by Tellurization of W Precursors Using Isothermal Close Space Vapor Transport Annealing, physica status solidi (a), vol.215, issue.23, p.1800425, 2018.

C. De-melo, G. Santana, V. Torres-costa, M. Behar, J. F. Dias et al., Infiltration of ZnO in Mesoporous Silicon by Isothermal Zn Annealing and Oxidation, ECS Journal of Solid State Science and Technology, vol.5, issue.2, pp.P6-P11, 2015.

O. Puente and . De-melo, Infiltration of ZnO in mesoporous silicon by isothermal Zn annealing and oxidation, ECS Journal of Solid State Science and Technology, vol.5, 2016.

O. De-melo, C. De-melo, G. Santana, J. Santoyo, O. Zelaya-angel et al., Intense white luminescence in ZnTe embedded porous silicon, Applied Physics Letters, vol.100, issue.26, p.263110, 2012.

C. De-melo, S. Larramendi, V. Torres-costa, J. Santoyo-salazar, M. Behar et al., Enhanced ZnTe infiltration in porous silicon by Isothermal Close Space Sublimation, Microporous and Mesoporous Materials, vol.188, pp.93-98, 2014.

V. Torres-costa, C. De-melo, A. Climent-font, F. Argulló-rueda, and O. De-melo, Isothermal close space sublimation for II-VI semiconductor filling of porous matrices, Nanoscale Research Letters, vol.7, issue.1, p.409, 2012.

O. De-melo, C. De-melo, G. Santana, J. Santoyo, O. Zelaya-angel et al., Intense white luminescence in ZnTe embedded porous silicon, Applied Physics Letters, vol.100, issue.26, p.263110, 2012.

C. De-melo, M. Jullien, J. Ghanbaja, F. Montaigne, J. Pierson et al., Local Structure and Point-Defect-Dependent Area-Selective Atomic Layer Deposition Approach for Facile Synthesis of p-Cu2O/n-ZnO Segmented Nanojunctions, ACS Applied Materials & Interfaces, vol.10, issue.43, pp.37671-37678, 2018.

C. De-melo, M. Jullien, J. Ghanbaja, F. Montaigne, J. Pierson et al., Local Structure and Point-Defect-Dependent Area-Selective Atomic Layer Deposition Approach for Facile Synthesis of p-Cu2O/n-ZnO Segmented Nanojunctions, ACS Applied Materials & Interfaces, vol.10, issue.43, pp.37671-37678, 2018.

F. Pierson, F. Soldera, F. Rigoni, N. Almqvist, A. Vomiero et al.,

C. De-melo, M. Jullien, Y. Battie, A. En-naciri, J. Ghanbaja et al., Tunable Localized Surface Plasmon Resonance and Broadband Visible Photoresponse of Cu Nanoparticles/ZnO Surfaces, ACS Applied Materials & Interfaces, vol.10, issue.47, pp.40958-40965, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02899428

C. De-melo, M. Jullien, J. Ghanbaja, F. Montaigne, J. Pierson et al., Local Structure and Point-Defect-Dependent Area-Selective Atomic Layer Deposition Approach for Facile Synthesis of p-Cu2O/n-ZnO Segmented Nanojunctions, ACS Applied Materials & Interfaces, vol.10, issue.43, pp.37671-37678, 2018.

C. De-melo, M. Jullien, Y. Battie, A. En-naciri, J. Ghanbaja et al., Semi-Transparent p-Cu2O/n-ZnO Nanoscale-Film Heterojunctions for Photodetection and Photovoltaic Applications, ACS Applied Nano Materials, vol.2, issue.7, pp.4358-4366, 2019.
URL : https://hal.archives-ouvertes.fr/hal-02390743

M. Jullien, J. F. Pierson, and Y. , Selective Atomic Layer Deposition of ZrO2 and Cu Using Soft Lithography, ECS Meeting Abstracts, 2006.

A. Battie, F. Naciri, S. Montaigne, J. Migot, T. Ghanbaja et al.,

, Luminescence 3D-Ordered Porous Materials Composed of CdSe and CdTe Nanocrystals, VIII International Conference on Surfaces, Materials and Vacuum

G. Romero, J. Santana, J. Santoyo-salazar, M. Dias, O. Behar et al.,

A. Bsiesy, Porous silicon luminescence under cathodic polarisation conditions, Porous Silicon Science and Technology, pp.307-322, 1995.

G. Melo, J. Santana, M. Santoyo-salazar, J. Behar, O. Ferraz-dias et al., Atomic layer deposition of copper oxide and metallic copper thin films on ZnO, 2017.

Y. Pierson, A. Battie, F. Naciri, D. Mücklich, and . Horwat,

, Heteroleptic Cyclopentadienyl-Amidinate Precursors for Atomic Layer Deposition (ALD) of Y, Pr, Gd, and Dy Oxide Thin Films, RAFALD: Journée du Réseau des Acteurs Français de l'ALD

C. De-melo, M. Jullien, J. Ghanbaja, F. Montaigne, J. Pierson et al., Local Structure and Point-Defect-Dependent Area-Selective Atomic Layer Deposition Approach for Facile Synthesis of p-Cu2O/n-ZnO Segmented Nanojunctions, ACS Applied Materials & Interfaces, vol.10, issue.43, pp.37671-37678, 2018.

C. De-melo, G. Santana, V. Torres-costa, M. Behar, J. F. Dias et al., Infiltration of ZnO in Mesoporous Silicon by Isothermal Zn Annealing and Oxidation, ECS Journal of Solid State Science and Technology, vol.5, issue.2, pp.P6-P11, 2015.

A. Bsiesy, Porous silicon luminescence under cathodic polarisation conditions, Porous Silicon Science and Technology, pp.307-322, 1995.

C. De-melo, S. Larramendi, V. Torres-costa, J. Santoyo-salazar, M. Behar et al., Enhanced ZnTe infiltration in porous silicon by Isothermal Close Space Sublimation, Microporous and Mesoporous Materials, vol.188, pp.93-98, 2014.

C. De-melo, V. Torres-costa, A. Climent-font, and O. De-melo, Infiltration of II-VI semiconductors into porous silicon, 8th International Congress on Chemistry, 2012.

O. De-melo, C. De-melo, G. Santana, J. Santoyo, O. Zelaya-angel et al., Intense white luminescence in ZnTe embedded porous silicon, Applied Physics Letters, vol.100, issue.26, p.263110, 2012.

V. Torres-costa, C. De-melo, A. Climent-font, F. Argulló-rueda, and O. De-melo, Isothermal close space sublimation for II-VI semiconductor filling of porous matrices, Nanoscale Research Letters, vol.7, issue.1, 2012.

V. Torres-costa, C. De-melo, A. Climent-font, F. Argulló-rueda, and O. De-melo, Isothermal close space sublimation for II-VI semiconductor filling of porous matrices, Nanoscale Research Letters, vol.7, issue.1, 2012.

C. De-melo, S. Larramendi, V. Torres-costa, J. Santoyo-salazar, M. Behar et al., Enhanced ZnTe infiltration in porous silicon by Isothermal Close Space Sublimation, Microporous and Mesoporous Materials, vol.188, pp.93-98, 2014.