L. Gervais, N. De-rooij, and E. Delamarche, Microfluidic Chips for Point-of-Care Immunodiagnostics, Advanced Materials, vol.66, issue.24, pp.151-176, 2011.
DOI : 10.1002/adma.201100464

S. Hayashi and T. Okamoto, Plasmonics: visit the past to know the future, Journal of Physics D: Applied Physics, vol.45, issue.43, p.433001, 2012.
DOI : 10.1088/0022-3727/45/43/433001

P. Zhao, N. Li, and D. Astruc, State of the art in gold nanoparticle synthesis, Coordination Chemistry Reviews, vol.257, issue.3-4, pp.3-4, 2013.
DOI : 10.1016/j.ccr.2012.09.002

Y. B. Zheng, B. Kiraly, P. S. Weiss, and T. J. Huang, Molecular plasmonics for biology and nanomedicine, Nanomedicine, vol.7, issue.5, pp.751-70, 2012.
DOI : 10.2217/nnm.12.30

J. R. Navarro and M. H. Werts, Resonant light scattering spectroscopy of gold, silver and gold???silver alloy nanoparticles and optical detection in microfluidic channels, The Analyst, vol.103, issue.2, pp.583-592, 2013.
DOI : 10.1039/C2AN36135C

URL : https://hal.archives-ouvertes.fr/hal-00764780

M. H. Werts, V. Raimbault, M. Loumaigne, L. Griscom, O. Français et al., Optical microscopy and spectroscopy of analyte-sensitive functionalized gold nanoparticles in microfluidic systems, Colloidal Nanocrystals for Biomedical Applications VIII, pp.85950-85950, 2013.
DOI : 10.1117/12.2001608

URL : https://hal.archives-ouvertes.fr/hal-00809421

T. M. Squires, R. J. Messinger, and S. R. Manalis, Making it stick: convection, reaction and diffusion in surface-based biosensors, Nature Biotechnology, vol.61, issue.4, pp.417-443, 2008.
DOI : 10.1038/nbt1388

P. E. Sheehan and L. J. Whitman, Detection Limits for Nanoscale Biosensors, Nano Letters, vol.5, issue.4, pp.803-810, 2005.
DOI : 10.1021/nl050298x

T. Squires and S. Quake, Microfluidics: Fluid physics at the nanoliter scale, Reviews of Modern Physics, vol.77, issue.3, pp.977-1026, 2005.
DOI : 10.1103/RevModPhys.77.977

V. K. Upadhyayula, Functionalized gold nanoparticle supported sensory mechanisms applied in detection of chemical and biological threat agents: A review, Analytica Chimica Acta, vol.715, pp.1-18, 2012.
DOI : 10.1016/j.aca.2011.12.008

S. S. Dasary, U. S. Rai, H. Yu, Y. Anjaneyulu, M. Dubey et al., Gold nanoparticle based surface enhanced fluorescence for detection of organophosphorus agents, Chemical Physics Letters, vol.460, issue.1-3, pp.1-3, 2008.
DOI : 10.1016/j.cplett.2008.05.082

H. R. Sim, A. W. Wark, and H. J. Lee, Attomolar detection of protein biomarkers using biofunctionalized gold nanorods with surface plasmon resonance, The Analyst, vol.81, issue.10, pp.2528-2560, 2010.
DOI : 10.1039/c0an00457j

S. Kim, J. Lee, S. J. Lee, and H. J. Lee, Ultra-sensitive detection of IgE using biofunctionalized nanoparticle-enhanced SPR, Talanta, vol.81, issue.4-5, pp.4-5, 2010.
DOI : 10.1016/j.talanta.2010.03.036

X. Huang, S. Neretina, and M. A. Sayed, Gold Nanorods: From Synthesis and Properties to Biological and Biomedical Applications, Advanced Materials, vol.17, issue.126, pp.4880-4910, 2009.
DOI : 10.1002/adma.200802789

C. Burda, X. Chen, R. Narayanan, and M. A. Sayed, Chemistry and Properties of Nanocrystals of Different Shapes, Chemical Reviews, vol.105, issue.4, pp.1025-102, 2005.
DOI : 10.1021/cr030063a

M. Grzelczak, J. Pérez-juste, P. Mulvaney, and L. M. Liz-marzán, Shape control in gold nanoparticle synthesis, Chemical Society Reviews, vol.19, issue.9, pp.1783-91, 2008.
DOI : 10.1039/b711486a

T. Mallat and A. Baiker, Potential of Gold Nanoparticles for Oxidation in Fine Chemical Synthesis, Annual Review of Chemical and Biomolecular Engineering, vol.3, issue.1, pp.11-28, 2012.
DOI : 10.1146/annurev-chembioeng-062011-081046

V. Myroshnychenko, J. Rodríguez-fernández, I. Pastoriza-santos, A. M. Funston, C. Novo et al., Modelling the optical response of gold nanoparticles, Chemical Society Reviews, vol.130, issue.9, pp.1792-805, 2008.
DOI : 10.1002/adma.200703214

L. Dykman and N. Khlebtsov, Gold nanoparticles in biomedical applications: recent advances and perspectives, Chem. Soc. Rev., vol.62, issue.66, pp.2256-82, 2012.
DOI : 10.1186/1472-6750-11-66

L. Y. Chou, K. Ming, and W. C. Chan, Strategies for the intracellular delivery of nanoparticles, Chem. Soc. Rev., vol.7, issue.1, pp.233-278, 2011.
DOI : 10.1039/C0CS00003E

A. Govorov and H. Richardson, Generating heat with metal nanoparticles, Nano Today, vol.2, issue.1, pp.30-38, 2007.
DOI : 10.1016/S1748-0132(07)70017-8

R. Wilson, The use of gold nanoparticles in diagnostics and detection, Chemical Society Reviews, vol.442, issue.9, pp.2028-2073, 2008.
DOI : 10.1039/b712179m

R. A. Sperling, P. R. Gil, F. Zhang, M. Zanella, and W. J. Parak, Biological applications of gold nanoparticles, Chemical Society Reviews, vol.327, issue.3, pp.1896-908, 2008.
DOI : 10.1039/b713631p

D. Kumar, N. Saini, N. Jain, R. Sareen, and V. Pandit, Gold nanoparticles: an era in bionanotechnology, Expert Opinion on Drug Delivery, vol.6, issue.3, pp.397-409, 2013.
DOI : 10.1016/j.msec.2012.07.022

E. S. Day, J. G. Morton, and J. L. West, Nanoparticles for Thermal Cancer Therapy, Journal of Biomechanical Engineering, vol.131, issue.7, 2009.
DOI : 10.1115/1.3156800

E. C. Dreaden, A. M. Alkilany, X. Huang, C. J. Murphy, and M. , The golden age: gold nanoparticles for biomedicine, Chem. Soc. Rev., vol.45, issue.135, pp.2740-79, 2012.
DOI : 10.1039/C1CS15237H

E. C. Dreaden, L. A. Austin, M. A. Mackey, and M. A. Sayed, Size matters: gold nanoparticles in targeted cancer drug delivery, Therapeutic Delivery, vol.3, issue.4, pp.457-78, 2012.
DOI : 10.4155/tde.12.21

S. Akhter, M. Z. Ahmad, F. J. Ahmad, G. Storm, and R. J. Kok, Gold nanoparticles in theranostic oncology: current state-of-the-art, Expert Opinion on Drug Delivery, vol.6, issue.4, pp.1225-1268, 2012.
DOI : 10.1021/nl0500555

K. T. Butterworth, S. J. Mcmahon, F. J. Currell, and K. M. Prise, Physical basis and biological mechanisms of gold nanoparticle radiosensitization, Nanoscale, vol.115, issue.4, pp.4830-4838, 2012.
DOI : 10.1039/c2nr31227a

F. Xia, X. Zuo, R. Yang, Y. Xiao, D. Kang et al., Colorimetric detection of DNA, small molecules, proteins, and ions using unmodified gold nanoparticles and conjugated polyelectrolytes, Proc. Natl. Acad. Sci, pp.10837-10878, 2010.
DOI : 10.1073/pnas.1005632107

P. Englebienne, Use of colloidal gold surface plasmon resonance peak shift to infer affinity constants from the interactions between protein antigens and antibodies specific for single or multiple epitopes, The Analyst, vol.123, issue.7, pp.1599-603, 1998.
DOI : 10.1039/a804010i

R. Elghanian, J. J. Storhoff, R. C. Mucic, R. L. Letsinger, and C. A. Mirkin, Selective Colorimetric Detection of Polynucleotides Based on the Distance-Dependent Optical Properties of Gold Nanoparticles, Science, vol.277, issue.5329, pp.1078-1081, 1997.
DOI : 10.1126/science.277.5329.1078

S. Bidault, F. J. De-abajo, and A. Polman, Plasmon-Based Nanolenses Assembled on a Well-Defined DNA Template, Journal of the American Chemical Society, vol.130, issue.9, pp.2750-2751, 2008.
DOI : 10.1021/ja711074n

G. Doria, R. Franco, and P. Baptista, Nanodiagnostics: fast colorimetric method for single nucleotide polymorphism/mutation detection, IET Nanobiotechnology, vol.1, issue.4, pp.53-57, 2007.
DOI : 10.1049/iet-nbt:20070001

P. V. Baptista, M. Koziol-montewka, J. Paluch-oles, G. Doria, and R. Franco, Gold-Nanoparticle-Probe-Based Assay for Rapid and Direct Detection of Mycobacterium tuberculosis DNA in Clinical Samples, Clinical Chemistry, vol.52, issue.7, pp.1433-1437, 2006.
DOI : 10.1373/clinchem.2005.065391

J. Conde, J. M. De-la-fuente, and P. V. Baptista, RNA quantification using gold nanoprobes - application to cancer diagnostics, Journal of Nanobiotechnology, vol.8, issue.1, 2010.
DOI : 10.1186/1477-3155-8-5

K. Aslan, C. C. Luhrs, and V. H. Pérez-luna, Controlled and Reversible Aggregation of Biotinylated Gold Nanoparticles with Streptavidin, The Journal of Physical Chemistry B, vol.108, issue.40, pp.15631-15639, 2004.
DOI : 10.1021/jp036089n

P. Englebienne, Use of colloidal gold surface plasmon resonance peak shift to infer affinity constants from the interactions between protein antigens and antibodies specific for single or multiple epitopes, The Analyst, vol.123, issue.7, pp.1599-1603, 1998.
DOI : 10.1039/a804010i

J. R. Kalluri, T. Arbneshi, S. A. Khan, A. Neely, P. Candice et al., Use of Gold Nanoparticles in a Simple Colorimetric and Ultrasensitive Dynamic Light Scattering Assay: Selective Detection of Arsenic in Groundwater, Angewandte Chemie International Edition, vol.42, issue.51, pp.9668-71, 2009.
DOI : 10.1002/anie.200903958

K. Ai, Y. Liu, and L. Lu, Hydrogen-Bonding Recognition-Induced Color Change of Gold Nanoparticles for Visual Detection of Melamine in Raw Milk and Infant Formula, Journal of the American Chemical Society, vol.131, issue.27, pp.9496-9503, 2009.
DOI : 10.1021/ja9037017

C. Han and H. Li, Visual detection of melamine in infant formula at 0.1 ppm level based on silver nanoparticles, The Analyst, vol.58, issue.3, pp.583-591, 2010.
DOI : 10.1039/b923424a

D. Bartczak, O. L. Muskens, S. Nitti, T. Sanchez-elsner, T. M. Millar et al., Interactions of Human Endothelial Cells with Gold Nanoparticles of Different Morphologies, Small, vol.288, issue.1, pp.122-130, 2012.
DOI : 10.1002/smll.201101422

J. Yguerabide and E. E. Yguerabide, Light-Scattering Submicroscopic Particles as Highly Fluorescent Analogs and Their Use as Tracer Labels in Clinical and Biological Applications, Analytical Biochemistry, vol.262, issue.2, pp.137-156, 1998.
DOI : 10.1006/abio.1998.2759

J. Yguerabide and E. E. Yguerabide, Light-Scattering Submicroscopic Particles as Highly Fluorescent Analogs and Their Use as Tracer Labels in Clinical and Biological Applications, Analytical Biochemistry, vol.262, issue.2, pp.157-176, 1998.
DOI : 10.1006/abio.1998.2760

J. Yguerabide and E. E. Yguerabide, Resonance light scattering particles as ultrasensitive labels for detection of analytes in a wide range of applications, Journal of Cellular Biochemistry, vol.262, issue.S37, pp.71-81, 2001.
DOI : 10.1002/jcb.10077

T. Mappes, N. Jahr, A. Csaki, N. Vogler, J. Popp et al., The Invention of Immersion Ultramicroscopy in 1912-The Birth of Nanotechnology?, Angewandte Chemie International Edition, vol.316, issue.45, pp.11208-11212, 2012.
DOI : 10.1002/anie.201204688

R. A. Zsigmondy, Properties of colloids (Nobel lecture), Properties of colloids (Nobel lecture), 1926.

M. H. Werts, H. Zaim, and M. Blanchard-desce, Excimer probe of the binding of alkyl disulfides to gold nanoparticles and subsequent monolayer dynamicsElectronic supplementary information (ESI) available: Absorption spectra of nanoparticle solutions in toluene. See http://www.rsc.org/suppdata/pp/b3/b310952f/, Photochemical & Photobiological Sciences, vol.3, issue.1, pp.29-32, 2004.
DOI : 10.1039/b310952f

M. Loumaigne, R. Praho, D. Nutarelli, M. H. Werts, and A. Débarre, Fluorescence correlation spectroscopy reveals strong fluorescence quenching of FITC adducts on PEGylated gold nanoparticles in water and the presence of fluorescent aggregates of desorbed thiolate ligands, Physical Chemistry Chemical Physics, vol.6, issue.36, pp.11004-11018, 2010.
DOI : 10.1039/c004167j

URL : https://hal.archives-ouvertes.fr/hal-00542994

N. Nerambourg, R. Praho, M. H. Werts, D. Thomas, and M. Blanchard-desce, Hydrophilic monolayer-protected gold nanoparticles and their functionalisation with fluorescent chromophores, International Journal of Nanotechnology, vol.5, issue.6/7/8, pp.722-740, 2008.
DOI : 10.1504/IJNT.2008.018693

URL : https://hal.archives-ouvertes.fr/hal-00396983

G. Schneider, G. Decher, N. Nerambourg, R. Praho, M. H. Werts et al., Distance-Dependent Fluorescence Quenching on Gold Nanoparticles Ensheathed with Layer-by-Layer Assembled Polyelectrolytes, Nano Letters, vol.6, issue.3, pp.530-536, 2006.
DOI : 10.1021/nl052441s

URL : https://hal.archives-ouvertes.fr/hal-00097902

J. P. Lafleur, S. Senkbeil, T. G. Jensen, and J. P. Kutter, Gold nanoparticle-based optical microfluidic sensors for analysis of environmental pollutants, Lab on a Chip, vol.36, issue.411, pp.4651-4657, 2012.
DOI : 10.1039/c2lc40543a

L. Tong, M. Righini, M. Gonzalez, R. Quidant, and M. Kall, Optical aggregation of metal nanoparticles in a microfluidic channel for surface-enhanced Raman scattering analysis, Lab Chip, vol.4, issue.2, pp.193-195, 2009.
DOI : 10.1039/B813204F

C. Delhaye, J. Bruneel, D. Talaga, M. Guirardel, S. Lecomte et al., Tailoring Surface-Enhanced Raman Scattering Effect Using Microfluidics, The Journal of Physical Chemistry C, vol.116, issue.9, pp.5327-5332, 2012.
DOI : 10.1021/jp209169r

M. H. Werts, V. Raimbault, R. Texier-picard, R. Poizat, O. Français et al., Quantitative full-colour transmitted light microscopy and dyes for concentration mapping and measurement of diffusion coefficients in microfluidic architectures, Lab on a Chip, vol.9, issue.4, pp.808-820, 2012.
DOI : 10.1039/c2lc20889j

URL : https://hal.archives-ouvertes.fr/hal-00662353

B. Ibarlucea, C. Díez-gil, I. Ratera, J. Veciana, A. Caballero et al., PDMS based photonic lab-on-a-chip for the selective optical detection of heavy metal ions, The Analyst, vol.128, issue.10, pp.839-883, 2013.
DOI : 10.1016/j.bios.2012.08.006

F. Lin, M. Sabri, and J. Alirezaie, Development of a Nanoparticle-Labeled Microfluidic Immunoassay for Detection of Pathogenic Microorganisms, Clinical and Vaccine Immunology, vol.12, issue.3, pp.418-425, 2005.
DOI : 10.1128/CDLI.12.3.418-425.2005

V. Filipe, A. Hawe, and W. Jiskoot, Critical Evaluation of Nanoparticle Tracking Analysis (NTA) by NanoSight for the Measurement of Nanoparticles and Protein Aggregates, Pharmaceutical Research, vol.103, issue.5, pp.796-810, 2010.
DOI : 10.1007/s11095-010-0073-2

H. Zhu, S. Mavandadi, A. F. Coskun, O. Yaglidere, and A. Ozcan, Optofluidic Fluorescent Imaging Cytometry on a Cell Phone, Analytical Chemistry, vol.83, issue.17, pp.6641-6648, 2011.
DOI : 10.1021/ac201587a

J. Seo and L. P. Lee, Disposable integrated microfluidics with self-aligned planar microlenses, Sensors and Actuators B: Chemical, vol.99, issue.2-3, pp.3-615, 2004.
DOI : 10.1016/j.snb.2003.11.014

A. Y. Fu, C. Spence, A. Scherer, F. H. Arnold, and S. R. Quake, A microfabricated fluorescence-activated cell sorter, Nat. Biotechnol, vol.17, issue.11, pp.1109-1120, 1999.

S. Gawad, L. Schild, and P. H. Renaud, Micromachined impedance spectroscopy flow cytometer for cell analysis and particle sizing, Lab on a Chip, vol.1, issue.1, pp.76-82, 2001.
DOI : 10.1039/b103933b

A. Lenshof and T. Laurell, Continuous separation of cells and particles in microfluidic systems, Chemical Society Reviews, vol.9, issue.235, pp.1203-1220, 2010.
DOI : 10.1039/b915522h

B. H. Weigl and P. Yager, MICROFLUIDICS:Microfluidic Diffusion-Based Separation and Detection, Science, vol.283, issue.5400, pp.346-347, 1999.
DOI : 10.1126/science.283.5400.346

D. W. Inglis, J. A. Davis, R. H. Austin, and J. C. Sturm, Critical particle size for fractionation by deterministic lateral displacement, Lab on a Chip, vol.13, issue.5, pp.655-663, 2006.
DOI : 10.1039/b515371a

L. R. Huang, E. C. Cox, R. H. Austin, and J. C. Sturm, Continuous Particle Separation Through Deterministic Lateral Displacement, Science, vol.304, issue.5673, pp.987-990, 2004.
DOI : 10.1126/science.1094567

L. Huang, P. Silberzan, J. Tegenfeldt, E. Cox, J. Sturm et al., Role of Molecular Size in Ratchet Fractionation, Physical Review Letters, vol.89, issue.17, p.178301, 2002.
DOI : 10.1103/PhysRevLett.89.178301

T. Duke and R. Austin, Microfabricated Sieve for the Continuous Sorting of Macromolecules, Physical Review Letters, vol.80, issue.7, pp.1552-1555, 1998.
DOI : 10.1103/PhysRevLett.80.1552

A. A. Bhagat, S. S. Kuntaegowdanahalli, and I. Papautsky, Continuous particle separation in spiral microchannels using dean flows and differential migration, Lab on a Chip, vol.3, issue.11, pp.1906-1920, 2008.
DOI : 10.1039/b807107a

D. and D. Carlo, Inertial microfluidics, Lab on a Chip, vol.121, issue.21, pp.3038-3084, 2009.
DOI : 10.1039/b908271a

D. , D. Carlo, D. Irimia, R. G. Tompkins, and M. Toner, Continuous inertial focusing, ordering, and separation of particles in microchannels, Proc. Natl. Acad. Sci, pp.18892-18899, 2007.

X. Xuan, J. Zhu, and C. Church, Particle focusing in microfluidic devices, Microfluidics and Nanofluidics, vol.7, issue.1, pp.1-16, 2010.
DOI : 10.1007/s10404-010-0602-7

K. Khoshmanesh, S. Nahavandi, S. Baratchi, A. Mitchell, and K. Kalantar-zadeh, Dielectrophoretic platforms for bio-microfluidic systems, Biosensors and Bioelectronics, vol.26, issue.5, pp.1800-1814, 2011.
DOI : 10.1016/j.bios.2010.09.022

E. Bisceglia, M. Cubizolles, F. Mallard, F. Vinet, O. Français et al., Micro-organism extraction from biological samples using DEP forces enhanced by osmotic shock, Lab on a Chip, vol.27, issue.5, pp.901-910, 2013.
DOI : 10.1039/c2lc41128h

URL : https://hal.archives-ouvertes.fr/hal-00785335

F. S. Hamdi, O. Franc?-ais, F. Subra, E. Dufour-gergam, and B. L. Pioufle, Microarray of non-connected gold pads used as high density electric traps for parallelized pairing and fusion of cells, Biomicrofluidics, vol.7, issue.4, p.44101, 2013.
DOI : 10.1063/1.4813062.4

URL : https://hal.archives-ouvertes.fr/hal-00861239

J. Regtmeier, R. Eichhorn, M. Viefhues, L. Bogunovic, and D. Anselmetti, Electrodeless dielectrophoresis for bioanalysis: Theory, devices and applications, ELECTROPHORESIS, vol.31, issue.17, pp.2253-73, 2011.
DOI : 10.1002/elps.201100055

T. Honegger, K. Berton, E. Picard, and D. Peyrade, Determination of Clausius???Mossotti factors and surface capacitances for colloidal particles, Applied Physics Letters, vol.98, issue.18, p.181906, 2011.
DOI : 10.1063/1.3583441

URL : https://hal.archives-ouvertes.fr/hal-00634171

P. Gascoyne, C. Mahidol, M. Ruchirawat, J. Satayavivad, P. Watcharasit et al., Microsample preparation by dielectrophoresis: isolation of malaria, Lab on a Chip, vol.2, issue.2, pp.70-75, 2002.
DOI : 10.1039/b110990c

T. Braschler, N. Demierre, E. Nascimento, T. Silva, A. G. Oliva et al., Continuous separation of cells by balanced dielectrophoretic forces at multiple frequencies, Lab Chip, vol.33, issue.2, pp.280-286, 2008.
DOI : 10.1016/j.snb.2007.09.078

H. Li and R. Bashir, Dielectrophoretic separation and manipulation of live and heat-treated cells of Listeria on microfabricated devices with interdigitated electrodes, Sensors and Actuators B: Chemical, vol.86, issue.2-3, pp.215-221, 2002.
DOI : 10.1016/S0925-4005(02)00172-7

L. Zheng, J. P. Brody, and P. J. Burke, Electronic manipulation of DNA, proteins, and nanoparticles for potential circuit assembly, Biosensors and Bioelectronics, vol.20, issue.3, pp.606-625, 2004.
DOI : 10.1016/j.bios.2004.03.029

R. J. Barsotti, M. D. Vahey, R. Wartena, Y. Chiang, J. Voldman et al., Assembly of Metal Nanoparticles into Nanogaps, Small, vol.278, issue.3, pp.488-99, 2007.
DOI : 10.1002/smll.200600334

A. F. Chrimes, A. A. Kayani, K. Khoshmanesh, P. R. Stoddart, P. Mulvaney et al., Dielectrophoresis???Raman spectroscopy system for analysing suspended nanoparticles, Lab on a Chip, vol.11, issue.1, pp.921-929, 2011.
DOI : 10.1039/c0lc00481b

A. Sonnenberg, J. Y. Marciniak, R. Krishnan, and M. J. Heller, Dielectrophoretic isolation of DNA and nanoparticles from blood, ELECTROPHORESIS, vol.61, issue.16, pp.2482-90, 2012.
DOI : 10.1002/elps.201100700

R. Tornay, T. Braschler, N. Demierre, B. Steitz, A. Finka et al., Dielectrophoresis-based particle exchanger for the manipulation and surface functionalization of particles, Lab Chip, vol.91, issue.2, pp.267-73, 2008.
DOI : 10.1039/B713776A

A. Ramos, H. Morgan, N. G. Green, and A. Castellanos, Ac electrokinetics: a review of forces in microelectrode structures, Journal of Physics D: Applied Physics, vol.31, issue.18, pp.2338-2353, 1998.
DOI : 10.1088/0022-3727/31/18/021

A. Castellanos and A. Ramos, Electrohydrodynamics and dielectrophoresis in microsystems: scaling laws, Journal of Physics D: Applied Physics, vol.36, issue.20, pp.2584-2597, 2003.
DOI : 10.1088/0022-3727/36/20/023

J. Oh, R. Hart, J. Capurro, and H. M. Noh, Comprehensive analysis of particle motion under non-uniform AC electric fields in a microchannel, Lab Chip, vol.89, issue.1, pp.62-78, 2009.
DOI : 10.1039/B801594E

W. D. Geoghegan, An electrophoretic method for selection of conditions for production of electrophoretically uniform protein colloidal gold complexes., Journal of Histochemistry & Cytochemistry, vol.39, issue.1, pp.111-132, 1991.
DOI : 10.1177/39.1.1983871

C. De-roe, P. J. Courtoy, and P. Baudhuin, A model of protein-colloidal gold interactions., Journal of Histochemistry & Cytochemistry, vol.35, issue.11, pp.1191-1198, 1987.
DOI : 10.1177/35.11.3655323

C. D. Walkey and W. C. Chan, Understanding and controlling the interaction of nanomaterials with proteins in a physiological environment, Chem. Soc. Rev., vol.14, issue.135, 2011.
DOI : 10.1039/C1CS15233E

. Sadowski, Synthesis and properties of water-soluble gold colloids covalently derivatized with neutral polymer monolayers, J. Am. Chem. Soc, vol.124, issue.20, pp.5811-5832, 2002.

G. Schneider, G. Decher, N. Nerambourg, R. Praho, M. H. Werts et al., Distance-Dependent Fluorescence Quenching on Gold Nanoparticles Ensheathed with Layer-by-Layer Assembled Polyelectrolytes, Nano Letters, vol.6, issue.3, pp.530-536, 2006.
DOI : 10.1021/nl052441s

URL : https://hal.archives-ouvertes.fr/hal-00097902

J. C. Love, L. A. Estroff, J. K. Kriebel, R. G. Nuzzo, and G. M. Whitesides, Self-Assembled Monolayers of Thiolates on Metals as a Form of Nanotechnology, Chemical Reviews, vol.105, issue.4, pp.1103-69, 2005.
DOI : 10.1021/cr0300789

M. Brust, J. Fink, and D. Bethell, Synthesis and reactions of functionalised gold nanoparticles, Journal of the Chemical Society, Chemical Communications, issue.16, pp.1655-1656, 1995.
DOI : 10.1039/c39950001655

J. R. Navarro, M. Plugge, M. Loumaigne, A. Sanchez-gonzalez, B. Mennucci et al., Probing the interactions between disulfide-based ligands and gold nanoparticles using a functionalised fluorescent perylene-monoimide dye, Photochemical & Photobiological Sciences, vol.91, issue.7, pp.1042-54, 2010.
DOI : 10.1039/c004167j

URL : https://hal.archives-ouvertes.fr/hal-00542995

S. Lin, Y. Tsai, C. Chen, C. Lin, and C. Chen, Two-Step Functionalization of Neutral and Positively Charged Thiols onto Citrate-Stabilized Au Nanoparticles, The Journal of Physical Chemistry B, vol.108, issue.7, pp.2134-2139, 2004.
DOI : 10.1021/jp036310w

K. Susumu, B. C. Mei, and H. Mattoussi, Multifunctional ligands based on dihydrolipoic acid and polyethylene glycol to promote biocompatibility of quantum dots, Nature Protocols, vol.7, issue.3, pp.424-460, 2009.
DOI : 10.1021/la049263n

B. C. Mei, K. Susumu, I. L. Medintz, and H. Mattoussi, Polyethylene glycol-based bidentate ligands to enhance quantum dot and gold nanoparticle stability in biological media, Nature Protocols, vol.4, issue.3, pp.412-435, 2009.
DOI : 10.1021/ja0657253

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.4797-862, 2007.
DOI : 10.1021/cr0680282

S. Mann, W. Shenton, M. Li, S. Connolly, and D. Fitzmaurice, Biologically Programmed Nanoparticle Assembly, Advanced Materials, vol.12, issue.2, pp.147-150, 2000.
DOI : 10.1002/(SICI)1521-4095(200001)12:2<147::AID-ADMA147>3.0.CO;2-U

M. E. Bakleh, V. Sol, K. Estieu-gionnet, R. Granet, G. Déléris et al., An efficient route to VEGF-like peptide porphyrin conjugates via microwave-assisted ???click-chemistry???, Tetrahedron, vol.65, issue.36, pp.7385-7392, 2009.
DOI : 10.1016/j.tet.2009.07.028

URL : https://hal.archives-ouvertes.fr/hal-00697324

S. Camou, H. Fujita, and T. Fujii, PDMS 2D optical lens integrated with microfluidic channels: principle and characterization, Lab on a Chip, vol.3, issue.1, pp.40-45, 2003.
DOI : 10.1039/b211280a

N. Fairbairn, A. Christofidou, A. G. Kanaras, T. A. Newman, and O. L. Muskens, Hyperspectral darkfield microscopy of single hollow gold nanoparticles for biomedical applications, Phys. Chem. Chem. Phys., vol.106, issue.12, pp.4163-4171, 2013.
DOI : 10.1002/smll.201200853

T. Honegger and D. Peyrade, Comprehensive analysis of alternating current electrokinetics induced motion of colloidal particles in a three-dimensional microfluidic chip, Journal of Applied Physics, vol.113, issue.19, p.194702, 2013.
DOI : 10.1063/1.4804304

URL : https://hal.archives-ouvertes.fr/hal-00850006

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.4797-862, 2007.
DOI : 10.1021/cr0680282

R. W. Taylor, R. Esteban, S. Mahajan, R. Coulston, O. Scherman et al., Simple Composite Dipole Model for the Optical Modes of Strongly-Coupled Plasmonic Nanoparticle Aggregates, The Journal of Physical Chemistry C, vol.116, issue.47, pp.25044-25051, 2012.
DOI : 10.1021/jp308986c