K. S. Novoselov, Electric Field Effect in Atomically Thin Carbon Films, Science, vol.306, pp.666-669, 2004.

K. S. Novoselov, Two-dimensional gas of massless Dirac fermions in graphene, Nature, vol.438, pp.197-200, 2005.

K. I. Bolotin, Ultrahigh electron mobility in suspended graphene, Solid State Commun, vol.146, pp.351-355, 2008.

S. V. Morozov, Giant Intrinsic Carrier Mobilities in Graphene and Its Bilayer

, Phys. Rev. Lett, vol.100, 2008.

S. Ghosh, D. L. Nika, E. P. Pokatilov, and A. A. Balandin, Heat conduction in graphene: experimental study and theoretical interpretation, New J. Phys, vol.11, p.95012, 2009.

A. Peigney, C. Laurent, E. Flahaut, R. R. Bacsa, and A. Rousset, Specific surface area of carbon nanotubes and bundles of carbon nanotubes, Carbon, vol.39, pp.507-514, 2001.
URL : https://hal.archives-ouvertes.fr/hal-01003709

I. W. Frank, D. M. Tanenbaum, A. M. Van-der-zande, and P. L. Mceuen, Mechanical properties of suspended graphene sheets, J. Vac. Sci. Technol. B Microelectron. Nanometer Struct, vol.25, p.2558, 2007.

F. Scarpa, S. Adhikari, and A. Srikantha-phani, Effective elastic mechanical properties of single layer graphene sheets, Nanotechnology, vol.20, p.65709, 2009.

V. Berry, Impermeability of graphene and its applications, Carbon, vol.62, pp.1-10, 2013.

L. Vicarelli, Graphene field-effect transistors as room-temperature terahertz detectors, Nat. Mater, vol.11, pp.865-871, 2012.

X. Wang, L. Zhi, K. Müllen, and . Transparent, Conductive Graphene Electrodes for Dye-Sensitized Solar Cells, Nano Lett, vol.8, p.22, 2008.

M. D. Stoller, S. Park, Y. Zhu, J. An, R. S. Ruoff et al.,

, Nano Lett, vol.8, pp.3498-3502, 2008.

N. N. Rosli, M. A. Ibrahim, N. Ahmad-ludin, M. A. Mat-teridi, and K. Sopian, A review of graphene based transparent conducting films for use in solar photovoltaic applications, Renew. Sustain. Energy Rev, vol.99, pp.83-99, 2019.

H. Gwon, Flexible energy storage devices based on graphene paper, Energy Environ. Sci, vol.4, p.1277, 2011.

N. Tyagi, N. F. Attia, and K. E. Geckeler, Exfoliated graphene nanosheets: pH-sensitive drug carrier and anti-cancer activity, J. Colloid Interface Sci, vol.498, pp.364-377, 2017.

S. H. Aboutalebi, High-Performance Multifunctional Graphene Yarns: Toward Wearable All-Carbon Energy Storage Textiles, ACS Nano, vol.8, pp.2456-2466, 2014.

Y. Wang, Wearable and Highly Sensitive Graphene Strain Sensors for Human Motion Monitoring, Adv. Funct. Mater, vol.24, pp.4666-4670, 2014.

M. Pumera, Graphene-based nanomaterials for energy storage, Energy Env. Sci, vol.4, pp.668-674, 2011.

Y. Shao, Graphene Based Electrochemical Sensors and Biosensors: A Review, Electroanalysis, vol.22, pp.1027-1036, 2010.

M. Vikkisk, Electrocatalytic oxygen reduction on nitrogen-doped graphene in alkaline media, Appl. Catal. B Environ, vol.147, pp.369-376, 2014.

S. Akbar, M. Rehan, H. Liu, I. Rafique, and H. Akbar, A brief review on graphene applications in rechargeable lithium ion battery electrode materials, Carbon Lett, vol.28, pp.1-8, 2018.

Y. Lu, High-On/Off-Ratio Graphene Nanoconstriction Field-Effect Transistor

, Small, vol.6, pp.2748-2754, 2010.

L. Zhang and Z. Xia, Mechanisms of Oxygen Reduction Reaction on Nitrogen-Doped Graphene for Fuel Cells, J. Phys. Chem. C, vol.115, pp.11170-11176, 2011.

R. Yadav and C. K. Dixit, Synthesis, characterization and prospective applications of nitrogen-doped graphene: A short review, J. Sci. Adv. Mater. Devices, vol.2, p.23, 2017.

R. Ma, Novel synthesis of N-doped graphene as an efficient electrocatalyst towards oxygen reduction, Nano Res, vol.9, pp.808-819, 2016.

M. Li, Z. Liu, F. Wang, and J. Xuan, The influence of the type of N dopping on the performance of bifunctional N-doped ordered mesoporous carbon electrocatalysts in oxygen reduction and evolution reaction, J. Energy Chem, vol.26, pp.422-427, 2017.

H. L. Tan, A. Du, R. Amal, and Y. H. Ng, Decorating platinum on nitrogen-doped graphene sheets: Control of the platinum particle size distribution for improved photocatalytic H2 generation, Chem. Eng. Sci, vol.194, pp.85-93, 2019.

M. Inagaki, M. Toyoda, Y. Soneda, and T. Morishita, Nitrogen-doped carbon materials, Carbon, vol.132, pp.104-140, 2018.

L. S. Panchakarla, Synthesis, Structure, and Properties of Boron-and Nitrogen-Doped Graphene, Adv. Mater. NA-NA, 2009.

Z. Wang, Synthesis of nitrogen-doped graphene by chemical vapour deposition using melamine as the sole solid source of carbon and nitrogen, J. Mater. Chem. C, vol.2, p.7396, 2014.

C. H. Choi, S. H. Park, M. W. Chung, and S. I. Woo, Easy and controlled synthesis of nitrogen-doped carbon, Carbon, vol.55, pp.98-107, 2013.

D. Li, Facile synthesis of nitrogen-doped graphene via low-temperature pyrolysis: The effects of precursors and annealing ambience on metal-free catalytic oxidation, Carbon, vol.115, pp.649-658, 2017.

J. Moon, One-Step Synthesis of N-doped Graphene Quantum Sheets from

, Monolayer Graphene by Nitrogen Plasma, Adv. Mater, vol.26, pp.3501-3505, 2014.

S. Park, Chemical structures of hydrazine-treated graphene oxide and generation of aromatic nitrogen doping, Nat. Commun, vol.3, 2012.

P. Sasikala, S. Poulin, P. Aymonier, and C. , Prospects of Supercritical Fluids in Realizing Graphene-Based Functional Materials, Adv. Mater, vol.28, pp.2663-2691, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01307852

X. Chen, D. Deng, X. Pan, Y. Hu, and X. Bao, N-doped graphene as an electron donor of iron catalysts for CO hydrogenation to light olefins, Chemical Communications, vol.51, p.24, 2015.

D. Deng, Toward N-Doped Graphene via Solvothermal Synthesis, Chemistry of Materials, vol.23, pp.1188-1193, 2011.

L. Speyer, Multi-scale characterization of graphenic materials synthesized by a solvothermal-based process: Influence of the thermal treatment, Solid State Sci, vol.50, pp.42-51, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01289108

L. Speyer, S. Fontana, S. Ploneis, and C. Hérold, Influence of the precursor alcohol on the adsorptive properties of graphene foams elaborated by a solvothermal-based process

, Microporous Mesoporous Mater, vol.243, pp.254-262, 2017.

L. Speyer, S. Fontana, S. Cahen, and C. Hérold, Simple production of high-quality graphene foams by pyrolysis of sodium ethoxide, Mater. Chem. Phys, vol.219, pp.57-66, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02351968

S. M. Lyth, Solvothermal Synthesis of Nitrogen-Containing Graphene for

, Electrochemical Oxygen Reduction in Acid Media. e-Journal of Surface Science and Nanotechnology, vol.10, pp.29-32, 2012.

E. Bayram, G. Yilmaz, and S. Mukerjee, A solution-based procedure for synthesis of nitrogen doped graphene as an efficient electrocatalyst for oxygen reduction reactions in acidic and alkaline electrolytes, Applied Catalysis B: Environmental, vol.192, pp.26-34, 2016.

S. Yang, A powerful approach to fabricate nitrogen-doped graphene sheets with high specific surface area, Electrochemistry Communications, vol.14, pp.39-42, 2012.

M. Choucair, P. Thordarson, and J. A. Stride, Gram-scale production of graphene based on solvothermal synthesis and sonication, Nat. Nanotechnol, vol.4, pp.30-33, 2009.

J. Li, L. Xia, and S. Xiang, A new method based on elements and chemical bonds for organic compounds critical properties estimation, Fluid Phase Equilibria, vol.417, pp.1-6, 2016.

J. Marrero and R. Gani, Group-contribution based estimation o pure component properties. Fluid Phase Equilibria 183-184, pp.183-208, 2001.

J. Scilipoti, M. Cismondi, and E. A. Brignole, Prediction of physical properties for molecular design of solvents, Fluid Phase Equilibria, vol.362, pp.74-80, 2014.

C. Tu, Group-contribution estimation of critical temperature wih only chemical structure, Chem. Eng. Sci, vol.50, pp.3515-3520, 1995.

L. Speyer, , 2016.

K. Sasaki, Y. Tokura, and T. Sogawa, The Origin of Raman D Band: Bonding and

, Antibonding Orbitals in Graphene. Crystals, vol.3, pp.120-140, 2013.

R. J. Nemanich and S. A. Solin, First-and second-order Raman scattering from finitesize crystals of graphite, Phys. Rev. B, vol.20, pp.392-401, 1979.

M. S. Dresselhaus, A. Jorio, and R. Saito, Characterizing Graphene, Graphite, and Carbon Nanotubes by Raman Spectroscopy, Annu. Rev. Condens. Matter Phys, vol.1, pp.89-108, 2010.

A. Eckmann, Probing the Nature of Defects in Graphene by Raman Spectroscopy

, Nano Lett, vol.12, pp.3925-3930, 2012.

S. Piscanec, F. Mauri, A. C. Ferrari, M. Lazzeri, and J. Robertson, Ab initio resonant Raman spectra of diamond-like carbons, Diam. Relat. Mater, vol.14, pp.1078-1083, 2005.
URL : https://hal.archives-ouvertes.fr/hal-00021428

L. Bokobza, J. Bruneel, and M. Couzi, Raman Spectra of Carbon-Based Materials (from Graphite to Carbon Black) and of Some Silicone Composites. C 1, pp.77-94, 2015.

A. Bhaumik, Reduced Graphene Oxide Thin Films with Very Large Charge Carrier Mobility Using Pulsed Laser Deposition, J. Mater. Sci. Eng, vol.06, 2017.

J. Wu, M. Lin, X. Cong, H. Liu, and P. Tan, Raman spectroscopy of graphene-based materials and its applications in related devices, Chem. Soc. Rev, vol.47, pp.1822-1873, 2018.

R. Saito, M. Hofmann, G. Dresselhaus, A. Jorio, and M. S. Dresselhaus, Raman spectroscopy of graphene and carbon nanotubes, Adv. Phys, vol.60, pp.413-550, 2011.

M. A. Tamor, J. A. Haire, C. H. Wu, and K. C. Hass, Correlation of the optical gaps and Raman spectra of hydrogenated amorphous carbon films, Appl. Phys. Lett, vol.54, pp.123-125, 1989.

F. Tuinstra and J. L. Koenig, Raman Spectrum of Graphite, J. Chem. Phys, vol.53, pp.1126-1130, 1970.

J. Schwan, S. Ulrich, V. Batori, H. Ehrhardt, and S. R. Silva, Raman spectroscopy on amorphous carbon films, J. Appl. Phys, vol.80, pp.440-447, 1996.

M. A. Lillo-rodenas, D. Cazorla-amoros, and A. Linares-solano, Understanding chemical reactions between carbons and NaOH and KOH An insight into the chemical activation mechanism, vol.9, 2003.

E. Raymundo-piñero, P. Azaïs, . T. Cacciaguerra, D. Cazorla-amorós, and -. Linares,

A. Solano and F. Béguin, KOH and NaOH activation mechanisms of multiwalled carbon nanotubes with different structural organisation, Carbon, vol.43, pp.786-795, 2005.

M. Thommes, Physisorption of gases, with special reference to the evaluation of surface area and pore size distribution (IUPAC Technical Report), Pure Appl. Chem, vol.87, pp.1051-1069, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01416682

S. Brunauer, P. H. Emmett, and E. Teller, Adsorption of Gases in Multimolecular Layers

, J. Am. Chem. Soc, vol.60, pp.309-319, 1938.

J. Rouquerol, Recommendations for the Characterization of Porous Solids

J. Jagiello and J. P. Olivier, 2D-NLDFT adsorption models for carbon slit-shaped pores with surface energetical heterogeneity and geometrical corrugation, Carbon, vol.55, pp.70-80, 2013.