The development and application of direct fuel injection techniques for emissions reduction in high temperature furnaces, nd International Seminar on High Temperature Combustion, 2000. ,
Procédé pour la récupération de CO2 à partir de flux gazeux, 2012. ,
Physisorption of molecular oxygen on single-wall carbon nanotube bundles and graphite, Physical Review B, vol.111, issue.7, pp.66-075404, 2002. ,
DOI : 10.1021/ja00205a003
Procédé et installation de production d'azote par permeation gazeuse et adsorption combinées, 1996. ,
Modified atmosphere packaging of vegetables: an appraisal, Journal of Food Science and Technology, pp.31-267, 1994. ,
Review: Modified Atmosphere Packaging and its effects on the microbiological quality and safety of produce, International Journal of Food Science and Technology, vol.31, issue.6, pp.31-463, 1996. ,
DOI : 10.1046/j.1365-2621.1996.00369.x
Microbiological safety of controlled and modified atmosphere packaging of fresh and fresh-cut products, Comprehensive Reviews in Food Science and Food Safety, vol.2, pp.142-160, 2003. ,
Predominant enterobacteria on modified-atmosphere packaged meat and poultry, Food Microbiology, vol.34, issue.2, pp.252-258, 2013. ,
DOI : 10.1016/j.fm.2012.10.007
The effects of modified atmosphere packaging, EDTA and oregano oil on the quality of chicken liver meat, Food Research International, vol.44, issue.9, pp.44-2751, 2011. ,
DOI : 10.1016/j.foodres.2011.06.011
The effects of modified atmosphere gas composition on microbiological criteria, color and oxidation values of minced beef meat, Meat Science, vol.88, issue.2, pp.221-226, 2011. ,
DOI : 10.1016/j.meatsci.2010.12.021
Modified atmosphere packaging and vacuum packaging for long period chilled storage of dry-cured Iberian ham, Meat Science, vol.84, issue.4, pp.760-768, 2010. ,
DOI : 10.1016/j.meatsci.2009.11.013
Gas exchange dynamics in modified atmosphere packaging of soft cheese, Journal of Food Engineering, pp.95-438, 2009. ,
Effects of passive and active modified atmosphere packaging conditions on ready-toeat table grape, Journal of Food engineering, pp.102-115, 2011. ,
Optimization of an equilibrium modified atmosphere packaging (EMAP) for minimally processed mandarin segments, Journal of Food Engineering, vol.91, issue.3, pp.91-474, 2009. ,
DOI : 10.1016/j.jfoodeng.2008.09.027
Effects of modified atmosphere packaging on visual quality and glusinolates of broccoli florets, Food Chemistry, pp.114-142, 2009. ,
Quality changes in fresh cut tomato as affected by modified atmosphere packaging, Postharvest Biology and Technology, vol.25, issue.2, pp.199-207, 2002. ,
DOI : 10.1016/S0925-5214(01)00166-1
Staling of Wheat Bread Stored in Modified Atmosphere, LWT - Food Science and Technology, vol.34, issue.7, pp.487-491, 2001. ,
DOI : 10.1006/fstl.2001.0793
Modified atmosphere storage of rockfish fillets, Journal of Food Science, pp.47-181, 1981. ,
The effects of modified atmosphere packaging and vacuum packaging on chemical, sensory and microbiological changes of sardines (Sardina pilchardus), Food Chemistry, vol.85, issue.1, pp.49-57, 2004. ,
DOI : 10.1016/j.foodchem.2003.05.006
Modified atmosphere storage of rockfish (Sebastes miniatus) and silver salmon (Oncorynchus kisutch), Journal of Food Science, pp.45-93, 1980. ,
Effects of Pork Meat Cut and Packaging Type on Lipid Oxidation and Oxidative Products during Refrigerated Storage (8 ??C), Journal of Food Science, vol.14, issue.4, pp.73-127, 2008. ,
DOI : 10.1111/j.1365-2621.1970.tb04815.x
Current research in meat color, Meat Science, vol.71, issue.1, pp.100-121, 2005. ,
DOI : 10.1016/j.meatsci.2005.03.003
MODIFIED ATMOSPHERE AND VACUUM PACKAGING OF MEAT AND POULTRY PRODUCTS, Food Reviews International, vol.71, issue.4, pp.263-293, 2002. ,
DOI : 10.1007/978-1-4615-2137-2_11
Valuable products from biotechnology of microalgae, Applied Microbiology and Biotechnology, vol.292, issue.6, pp.635-648, 2004. ,
DOI : 10.1007/s00253-004-1647-x
Current knowledge on potential health benefits of Spirulina, Journal of Applied Phycology, vol.7, issue.2, pp.235-240, 1993. ,
DOI : 10.4327/jsnfs.44.273
Marine bioprocess engineering, Proceedings of the Society for Industrial Microbiology, pp.401-413, 1999. ,
Production potential of docosahexaenoic acid by the heterotrophic marine dinoflagellate Crypthecodinium cohnii, Process Biochemistry, vol.34, issue.6-7, pp.633-637, 1999. ,
DOI : 10.1016/S0032-9592(98)00134-4
MARINE ALGAE AND THEIR PRODUCTS AND CONSTITUENTS IN PHARMACY ,
DOI : 10.1515/9783110882049.25
Antineoplastic activity of cultured blue-green algae (Cyanophyta), Journal of Phycology, vol.27, pp.530-536, 1991. ,
Commercial production of microalgae: ponds, tanks, tubes and fermenters, Journal of Biotechnology, vol.70, issue.1-3, pp.313-321, 1999. ,
DOI : 10.1016/S0168-1656(99)00083-8
Marine pharmacology in 1999: antitumor and cytotoxic compounds, Anticancer Research, vol.21, pp.2489-2500, 2001. ,
Marine Pharmacology in 2000: Marine Compounds with Antibacterial, Anticoagulant, Antifungal, Anti-inflammatory, Antimalarial, Antiplatelet, Antituberculosis, and Antiviral Activities; Affecting the Cardiovascular, Immune, and Nervous Systems and Other Miscellaneous Mechanisms of Action, Marine Biotechnology, vol.6, issue.1, pp.37-52, 2004. ,
DOI : 10.1007/s10126-003-0007-7
Medicinal and pharmaceutical uses of seaweed natural products: A review, Journal of Applied Phycology, vol.16, issue.4, pp.245-262, 2004. ,
DOI : 10.1023/B:JAPH.0000047783.36600.ef
Renewable biomethane from land and ocean energy crops and organic wastes, HortScience, pp.40-283, 2005. ,
Micro and macro-algae: utility for industrial applications, Outputs from the EPOBIO project, p.82, 2007. ,
Mechanisms of liquefaction and pyrolysis reactions of biomass, Energy Conversion and Management, vol.41, issue.6, pp.633-646, 2000. ,
DOI : 10.1016/S0196-8904(99)00130-2
Recovery of liquid fuel from hydrocarbon-rich microalgae by thermochemical liquefaction, Fuel, vol.73, issue.12, pp.73-1855, 1994. ,
DOI : 10.1016/0016-2361(94)90211-9
Possibility of renewable energy production and CO2 mitigation by thermochemical liquefaction of microalgae, Biomass and Bioenergy, vol.17, issue.1, pp.33-39, 1999. ,
DOI : 10.1016/S0961-9534(99)00019-7
Effects of temperature and holding time on production of renewable fuels from pyrolysis of Chlorella protothecoides, Journal of Applied Phycology, vol.12, issue.2, pp.147-152, 2000. ,
DOI : 10.1023/A:1008115025002
Pyrolytic characteristics of heterotrophic Chlorella protothecoides for renewable bio-fuel production, Journal of Applied Phycology, vol.13, issue.1, pp.5-12, 2001. ,
DOI : 10.1023/A:1008153831875
Pyrolytic characteristics of microalgae as renewable energy source determined by thermogravimetric analysis, Bioresource Technology, vol.80, issue.1, pp.1-7, 2001. ,
DOI : 10.1016/S0960-8524(01)00072-4
Liquid Fuel Production Using Microalgae, Journal of the Japan Petroleum Institute, vol.48, issue.5, pp.251-259, 2005. ,
DOI : 10.1627/jpi.48.251
Oily products from mosses and algae via pyrolysis", Energy Sources Part A-Recovery Utilization and Environmental Effects, pp.933-940, 2006. ,
Biodiesel from microalgae, Biotechnology Advances, vol.25, issue.3, pp.294-306, 2007. ,
DOI : 10.1016/j.biotechadv.2007.02.001
Utilisation des microalgues comme source d'énergie durable, p.111, 2009. ,
Chlorella sp.: A new strain with highly saturated fatty acids for biodiesel production in bubble-column photobioreactor, Applied Energy, pp.88-3354, 2011. ,
Hydrogen biotechnology: Progress and prospects, Nature Biotechnology, vol.38, issue.58, pp.1101-1103, 1996. ,
DOI : 10.1016/0168-1656(94)00148-6
The Technology of Biohydrogen, pp.19-30, 1998. ,
DOI : 10.1007/978-0-585-35132-2_3
Trails of green alga hydrogen research-from Hans Gaffron to new frontiers, Discoveries in, pp.681-689, 2006. ,
Biohydrogen production: prospects and limitations to practical application, International Journal of Hydrogen Energy, vol.29, issue.2, pp.29-173, 2004. ,
DOI : 10.1016/S0360-3199(03)00094-6
The Photobiological Production of Hydrogen: Potential Efficiency and Effectiveness as a Renewable Fuel, Critical Reviews in Microbiology, vol.409, issue.1, pp.31-50, 2005. ,
DOI : 10.1038/35055589
Perspectives and advances of biological H2 production in microorganisms, Applied Microbiology and Biotechnology, vol.405, issue.65, pp.72-442, 2006. ,
DOI : 10.1111/j.1574-6976.2001.tb00587.x
Photosynthetic biomass and H 2 production by green algae: from bioengineering to bioreactor scale up, Physiologia Plantarum, pp.131-141, 2007. ,
Energetic Efficiency of Hydrogen Photoevolution by Algal Water Splitting, Biophysical Journal, vol.54, issue.2, pp.365-368, 1988. ,
DOI : 10.1016/S0006-3495(88)82968-0
Hydrogen Production. Green Algae as a Source of Energy, PLANT PHYSIOLOGY, vol.127, issue.3, pp.740-748, 2001. ,
DOI : 10.1104/pp.010498
Microalgae, mass culture methods Encyclopedia of Bioprocess Technology: Fermentation, Biocatalysis and Bioseparation, vol.3, pp.1753-1769, 1999. ,
Photobioreactors: production systems for phototrophic microorganisms, Applied Microbiology and Biotechnology, vol.57, pp.287-293, 2001. ,
Photobioreactors for mass cultivation of algae, Bioresource Technology, vol.99, issue.10, pp.4021-4028, 2008. ,
DOI : 10.1016/j.biortech.2007.01.046
Metal-Air battery or fuel cell, 2008. ,
Advanced metal-air battery having a ceramic membrane electrolyte, 2008. ,
Studies on the oxygen reduction catalyst for zinc???air battery electrode, Journal of Power Sources, vol.124, issue.1, pp.124-278, 2003. ,
DOI : 10.1016/S0378-7753(03)00737-7
Carbon nanotubes as a secondary support of a catalyst layer in a gas diffusion electrode for metal air batteries, Journal of Colloid and Interface Science, vol.284, issue.2, pp.284-593, 2005. ,
DOI : 10.1016/j.jcis.2004.10.067
Metal/air batteries: Their status and potential ??? a review, Journal of Power Sources, vol.4, issue.4, pp.263-279, 1979. ,
DOI : 10.1016/0378-7753(79)80001-4
The Secondary Alkaline Zinc Electrode, Journal of The Electrochemical Society, vol.138, issue.2, pp.645-656, 1991. ,
DOI : 10.1149/1.2085653
A review on air cathodes for zinc???air fuel cells, Journal of Power Sources, vol.195, issue.5, pp.195-1271, 2010. ,
DOI : 10.1016/j.jpowsour.2009.08.100
Progress in electrical energy storage system: A critical review, Progress in Natural Science, vol.19, issue.3, pp.291-312, 2009. ,
DOI : 10.1016/j.pnsc.2008.07.014
Hierarchical meso-macroporous LaMnO3 electrode material for rechargeable zinc???air batteries, Journal of the Taiwan Institute of Chemical Engineers, vol.45, issue.5, pp.45-2334, 2014. ,
DOI : 10.1016/j.jtice.2014.05.023
Electrical energy storage at the turn of the Millennium, Power Engineering Journal, vol.13, issue.3, pp.107-112, 1999. ,
DOI : 10.1049/pe:19990301
Synthesis and characterization of carbon black/manganese oxide air cathodes for zinc-air batteries, Journal of Power Sources, vol.269, pp.269-88, 2014. ,
DOI : 10.1016/j.jpowsour.2014.06.108
Electrical energy storage, Power Engineering Journal, vol.12, pp.177-181, 1998. ,
Carbon-based air electrodes carrying MnO in zinc?air batteries, Journal of Power Sources, pp.91-83, 2000. ,
Metal-Air Batteries with High Energy Density: Li-Air versus Zn-Air, Advanced Energy Materials, vol.47, issue.1, pp.34-50, 2011. ,
DOI : 10.1016/S0013-4686(02)00316-X
The effect of binder and electrolyte on the performance of thin zinc-air battery, Electrochimica Acta, vol.69, pp.69-308, 2012. ,
DOI : 10.1016/j.electacta.2012.03.004
Pulsed laser deposition of electrochemically active perovskite films, Applied Surface Science, vol.197, issue.198, pp.197-198, 2002. ,
DOI : 10.1016/S0169-4332(02)00326-4
Chlor-alkali electrolysis with oxygen depolarized cathodes: history, present status and future prospects, Journal of Applied Electrochemistry, vol.50, issue.21, pp.38-1177, 2008. ,
DOI : 10.1007/s10800-008-9556-9
Preliminary Analysis of Fuel Cell Derived Technologies Applied to Energy Conservation in the Chlor-alkali Industry, Separation Science and Technology, vol.17, issue.13-15, pp.25-1537, 1990. ,
DOI : 10.1080/01496399008050408
Möglichkeiten zur Energierückgewinnung aus Wasserstoff bei der Chlor-Alkali-Elektrolyse, Chemie Ingenieur Technik, pp.81-489, 2009. ,
DOI : 10.1002/cite.200800172
Oxygen reduction electrodes for electrolysis in chlor-alkali cells, Electrochimica Acta, vol.51, issue.16, pp.3346-3350, 2006. ,
DOI : 10.1016/j.electacta.2005.10.024
Development of innovative Electrochemical Processes for chlorine production, involving the Oxygen Reduction Reaction", workshop Efficient oxygen reduction for electrochemical energy conversion, 2006. ,
Hydrogen Production From Water Electrolysis: Current Status and Future Trends, Proceedings of the IEEE, pp.410-426, 2012. ,
DOI : 10.1109/JPROC.2011.2156750
Design and performance of a solid polymer electrolyte water electrolyzer, International Journal of Hydrogen Energy, vol.21, issue.2, pp.87-93, 1996. ,
DOI : 10.1016/0360-3199(95)00005-4
Hydrogen Treatment of Materials, Pure hydrogen production by PEM electrolysis for hydrogen energy, International Journal of Hydrogen Energy, pp.31-171, 2006. ,
Recent advances in SPE?? water electrolyzer, Journal of Power Sources, vol.47, issue.3, pp.369-375, 1994. ,
DOI : 10.1016/0378-7753(94)87015-2
Electrolytic Separation and Purification of Oxygen from a Gas Mixture, The Journal of Physical Chemistry, vol.68, issue.4, pp.68-962, 1964. ,
DOI : 10.1021/j100786a508
Efficiency and economics of proton exchange membrane (PEM) fuel cells, International Journal of Hydrogen Energy, vol.21, issue.10, pp.891-901, 1996. ,
DOI : 10.1016/0360-3199(96)00030-4
An Analytical Solution of a Half-Cell Model for PEM Fuel Cells, Journal of The Electrochemical Society, vol.147, issue.7, pp.2468-2477, 2000. ,
DOI : 10.1149/1.1393555
Preparation of new solid polymer electrolyte composites for water electrolysis, International Journal of Hydrogen Energy, vol.15, issue.4, pp.15-245, 1990. ,
DOI : 10.1016/0360-3199(90)90043-X
A review on fuel cell technologies and power electronic interface, Renewable and Sustainable Energy Reviews, vol.13, issue.9, pp.2430-2440, 2009. ,
DOI : 10.1016/j.rser.2009.04.004
Piles à combustible PEMFC et SOFC? Description et gestion du système, pp.8-9, 2007. ,
Dicks, operational fuel cell voltage in Fuel cell systems explained 2nd edition, pp.45-66, 2003. ,
La pile à combustible: un élément de diversification énergétique. Forces et faiblesses de la pile à membrane échangeuse de protons, Société française de physique, pp.1416-1425, 2003. ,
Electrolyseurs de l'eau à membrane acide, pp.4810-4811, 2007. ,
Nine years of research and development on advanced water electrolysis. A review of the research programme of the Commission of the European Communities, Journal of Applied Electrochemistry, vol.57, issue.1, pp.1-14, 1988. ,
DOI : 10.1007/BF01016198
Hydrogen based emergency back-up system for telecommunication applications, Journal of Power Sources, vol.118, issue.1-2, pp.14-22, 2003. ,
DOI : 10.1016/S0378-7753(03)00056-9
Degradation of polymer electrolyte membranes, International Journal of Hydrogen Energy, vol.31, issue.13, pp.31-1838, 2006. ,
DOI : 10.1016/j.ijhydene.2006.05.006
Handbook of Fuel Cells: Fundamentals Technology and Applications, pp.647-662, 2003. ,
The degradation study of Nafion/PTFE composite membrane in PEM fuel cell under accelerated stress tests, International Journal of Hydrogen Energy, vol.39, issue.26, pp.39-14381, 2014. ,
DOI : 10.1016/j.ijhydene.2014.02.142
Studies on the thermal stability of the perfluorinated cation-exchange membrane Nafion-417, Journal of Thermal Analysis, vol.48, issue.4, pp.1097-1102, 1988. ,
DOI : 10.1007/BF01912735
Study of radiation-grafted FEP-Gpolystyrene membranes as polymer electrolytes in fuel cells, Electrochimica Acta, pp.40-345, 1995. ,
Behavior of Raipore Radiation-Grafted Polymer Membranes in H2/O2 Fuel Cells, Journal of the Electrochemical Society, pp.145-780, 1998. ,
Nafion and modified-Nafion membranes for polymer electrolyte fuel cells: An overview, Bulletin of Materials Science, vol.280, issue.163, pp.285-294, 2009. ,
DOI : 10.1002/app.1977.070210401
A review of platinum-based catalyst layer degradation in proton exchange membrane fuel cells, Journal of Power Sources, vol.194, issue.2, pp.194-588, 2009. ,
DOI : 10.1016/j.jpowsour.2009.06.073
Comparison of Pt/MWCNTs nanocatalysts synthesis processes for proton exchange membrane fuel cells, International Journal of Hydrogen Energy, vol.36, issue.17, pp.10877-10883, 2011. ,
DOI : 10.1016/j.ijhydene.2011.05.141
High performance electrodes with very low platinum loading for polymer electrolyte fuel cells, Electrochimica Acta, vol.40, issue.3, pp.40-285, 1995. ,
DOI : 10.1016/0013-4686(94)00270-B
Recent development of non-platinum catalysts for oxygen reduction reaction, Journal of Power Sources, vol.152, pp.1-15, 2005. ,
DOI : 10.1016/j.jpowsour.2005.05.098
Optimization of perfluorosulfonic acid ionomer loadings in catalyst layers of proton exchange membrane fuel cells, Electrochimica Acta, vol.60, pp.437-442, 2012. ,
DOI : 10.1016/j.electacta.2011.11.108
PtCo/C cathode catalyst for improved durability in PEMFCs, Journal of Power Sources, vol.144, issue.1, pp.11-20, 2005. ,
DOI : 10.1016/j.jpowsour.2004.11.067
Co-sputtering: a novel platinum?carbon catalyst preparation method, 2005. ,
Pt 1?x Co x nanoparticles as cathode catalyst for proton exchange membrane fuel cells with enhanced catalytic activity, Materials Chemistry and Physics, pp.124-841, 2010. ,
Thermodynamic guidelines for the design of bimetallic catalysts for oxygen electroreduction and rapid screening by scanning electrochemical microscopy, Journal of the American Chemical Society, pp.127-357, 2005. ,
Electrocatalysis of oxygen reduction on carbon supported Ru-based catalysts in a polymer electrolyte fuel cell, Journal of Power Sources, pp.153-160, 2006. ,
Chemical and electrochemical depositions of platinum group metals and their applications, Coordination Chemistry Reviews, vol.249, issue.5-6, pp.613-644, 2005. ,
DOI : 10.1016/j.ccr.2004.08.015
Fabrication Using High-Energy Ball-Milling Technique and Characterization of Pt-Co Electrocatalysts for Oxygen Reduction in Polymer Electrolyte Fuel Cells, Journal of Fuel Cell Science and Technology, vol.147, issue.272, pp.171-178, 2005. ,
DOI : 10.1149/1.1394008
Effect of pretreatment on Pt???Co/C cathode catalysts for the oxygen reduction reaction, International Journal of Hydrogen Energy, vol.35, issue.8, pp.3280-3286, 2010. ,
DOI : 10.1016/j.ijhydene.2010.01.078
Non precious metal catalysts for the PEM fuel cell cathode, International Journal of Hydrogen Energy, vol.37, issue.1, pp.357-372, 2012. ,
DOI : 10.1016/j.ijhydene.2011.08.095
Durability of PEFCs at High Humidity Conditions, Journal of The Electrochemical Society, vol.150, issue.1, pp.152-104, 2005. ,
DOI : 10.1149/1.1830355
A review of polymer electrolyte membrane fuel cells: Technology, applications, and needs on fundamental research, Applied Energy, vol.88, issue.4, pp.88-981, 2011. ,
DOI : 10.1016/j.apenergy.2010.09.030
Electrochemical performances of PEM water electrolysis cells and perspectives, International Journal of Hydrogen Energy, vol.36, issue.6, pp.36-4134, 2011. ,
DOI : 10.1016/j.ijhydene.2010.06.105
Effect of PTFE contents in the gas diffusion media on the performance of PEMFC, Journal of Power Sources, vol.131, issue.1-2, pp.131-182, 2004. ,
DOI : 10.1016/j.jpowsour.2003.12.037
Effect of carbon loading in microporous layer on PEM fuel cell performance, Journal of Power Sources, vol.163, issue.1, pp.357-363, 2006. ,
DOI : 10.1016/j.jpowsour.2006.09.020
A review of gas diffusion layer in PEM fuel cells: Materials and designs, International Journal of Hydrogen Energy, vol.37, issue.7, pp.5850-5865, 2012. ,
DOI : 10.1016/j.ijhydene.2011.12.148
Mitigation of Water Management in PEM Fuel Cell Cathodes by Hydrophilic Wicking Microporous Layers, Fuel Cells, vol.88, issue.6, pp.1176-1180, 2010. ,
DOI : 10.1002/fuce.201000003
URL : https://hal.archives-ouvertes.fr/hal-00576975
Influence of hydrophilicity in microporous layer for polymer electrolyte membrane fuel cells, Electrochimica Acta, pp.56-2450, 2011. ,
Optimization of porous current collectors for PEM water electrolysers, International Journal of Hydrogen Energy, vol.34, issue.11, pp.4968-4973, 2009. ,
DOI : 10.1016/j.ijhydene.2008.11.056
Review and analysis of PEM fuel cell design and manufacturing, Journal of Power Sources, vol.114, issue.1, pp.32-53, 2003. ,
DOI : 10.1016/S0378-7753(02)00542-6
Investigation of electrodeposition of Ni???Co???Fe???Zn alloys in DMSO with MHD effect, Materials Characterization, vol.66, pp.66-112, 2012. ,
DOI : 10.1016/j.matchar.2012.01.011
Theory meets experiment: Electrocatalysis of hydrogen oxidation/evolution at Pd???Au nanostructures, Catalysis Today, vol.177, issue.1, pp.55-63, 2011. ,
DOI : 10.1016/j.cattod.2011.05.004
Electrode kinetic parameters for the hydrogen evolution reaction on Pd in acid medium: influence of the electrode activation, International Journal of Hydrogen Energy, vol.15, issue.11, pp.15-783, 1990. ,
DOI : 10.1016/0360-3199(90)90013-O
Kinetics of hydrogen evolution reaction on stabilized Ni, Pt and Ni?Pt nanoparticles obtained by an organometallic approach, International Journal of Hydrogen Energy, pp.37-4798, 2012. ,
Studies of the hydrogen evolution reaction on smooth Co and electrodeposited Ni??????Co ultramicroelectrodes, Electrochemistry Communications, vol.1, issue.12, pp.600-604, 1999. ,
DOI : 10.1016/S1388-2481(99)00122-8
The electrocatalytic reactions of oxidation and evolution of hydrogen on iridium electrodes modified by sulphur adsorption, Journal of Electroanalytical Chemistry, pp.416-463, 1996. ,
Amorphous Ni???S???Mn alloy as hydrogen evolution reaction cathode in alkaline medium, International Journal of Hydrogen Energy, vol.33, issue.1, pp.33-61, 2008. ,
DOI : 10.1016/j.ijhydene.2007.08.026
The rate of electrolytic hydrogen evolution and the heat of adsorption of hydrogen, Transactions of the Faraday Society, vol.54, pp.1053-1063, 1958. ,
DOI : 10.1039/tf9585401053
Equilibrium forms of very small metallic crystals, Surface Science, vol.18, issue.2, pp.373-388, 1969. ,
DOI : 10.1016/0039-6028(69)90180-0
Surface science studies of model fuel cell electrocatalysts, Surface Science Report, vol.45, pp.117-229, 2002. ,
DOI : 10.1016/B978-008044696-7/50051-9
Temperature-Dependent Hydrogen Electrochemistry on Platinum Low-Index Single-Crystal Surfaces in Acid Solutions, The Journal of Physical Chemistry B, vol.101, issue.27, pp.5405-5413, 1997. ,
DOI : 10.1021/jp970930d
Study of hydrogen evolution reaction in acid medium on Pt microelectrodes, Electrochimica Acta, vol.46, issue.28, pp.46-4359, 2001. ,
DOI : 10.1016/S0013-4686(01)00726-5
Comparative evaluation of surface structure specificity of kinetics of UPD and OPD of H at single-crystal Pt electrodes, Electrochimica Acta, vol.44, issue.6-7, pp.44-1109, 1998. ,
DOI : 10.1016/S0013-4686(98)00214-X
Hydrogen electrode reaction: A complete kinetic description, Electrochimica Acta, vol.52, issue.25, pp.527396-7403, 2007. ,
DOI : 10.1016/j.electacta.2007.06.030
The phase-shift method for determining Langmuir and Temkin adsorption isotherms of over-potentially deposited hydrogen for the cathodic evolution reaction at the poly- aqueous electrolyte interface, International Journal of Hydrogen Energy, vol.30, issue.13-14, pp.30-1423, 2005. ,
DOI : 10.1016/j.ijhydene.2004.12.005
Relation of energies and coverages of underpotential and overpotential deposited H at Pt and other metals to the ???volcano curve??? for cathodic H2 evolution kinetics, Electrochimica Acta, vol.45, issue.25-26, pp.45-4075, 2000. ,
DOI : 10.1016/S0013-4686(00)00523-5
Behavior of overpotential-deposited species in Faradic reactions-II. Ac impedance measurements on H 2 evolution kinetics at activated and unactivated Pt cathodes, Electrochimica Acta, pp.32-1713, 1987. ,
State of adsorption and coverage by overpotential-deposited H in the H2 evolution reaction at Au and Pt, Electrochimica Acta, vol.31, issue.8, pp.31-1013, 1986. ,
DOI : 10.1016/0013-4686(86)80017-2
Mass transfer effect in hydrogen evolution reaction on Pt single-crystal electrodes in acid solution, Journal of Electroanalytical Chemistry, vol.334, issue.1-2, pp.351-357, 1992. ,
DOI : 10.1016/0022-0728(92)80583-P
Determination of adsorption of OPD H species in the cathodic hydrogen evolution reaction at Pt in relation to electrocatalysis, Journal of Electroanalytical Chemistry and Interfacial Electrochemistry, vol.198, issue.1, pp.149-175, 1986. ,
DOI : 10.1016/0022-0728(86)90033-1
Specificity of the kinetics of H2 evolution to the structure of single-crystal Pt surfaces, and the relation between opd and upd H, Journal of Electroanalytical Chemistry, vol.446, issue.1-2, pp.446-125, 1998. ,
DOI : 10.1016/S0022-0728(97)00652-9
A semi empirical study of the temperature dependence of the anode charge transfer coefficient of a 6 kW PEM electrolyzer, International Journal of Hydrogen Energy, pp.33-4247, 2008. ,
Oxygen evolution reaction on lead???bismuth alloys in sulfuric acid solution, Journal of Power Sources, vol.158, issue.2, pp.158-902, 2006. ,
DOI : 10.1016/j.jpowsour.2005.11.048
Oxygen evolution reaction on IrO 2 -based DSA ® type electrodes: kinetics analysis of Tafel lines and EIS, International Journal of Hydrogen Energy, pp.29-791, 2004. ,
Anodic oxygen evolution reaction at high temperatures in acid solutions at platinum, Electrochimica Acta, vol.39, issue.1, pp.39-137, 1994. ,
DOI : 10.1016/0013-4686(94)85020-8
Dégagement d'oxygène sur des métaux nobles ou leurs oxydes-Une revue de la littérature et estimation des paramètres cinétiques, 2012. ,
The Electrolytic Formation and Dissolution of Oxide Films on Platinum, Journal of The Electrochemical Society, vol.107, issue.9, pp.773-781, 1960. ,
DOI : 10.1149/1.2427886
Kinetics of Activation Controlled Consecutive Electrochemical Reactions: Anodic Evolution of Oxygen, The Journal of Chemical Physics, vol.28, issue.2, pp.817-827, 1956. ,
DOI : 10.1246/bcsj.22.266
Oxygen Electrochemistry, Modern aspects of electrochemistry, vol.7 ,
DOI : 10.1007/978-1-4613-3584-9_6
Sputtered iridium oxide films as electrocatalysts for water splitting via PEM electrolysis, Electrochimica Acta, vol.52, issue.12, pp.52-3889, 2007. ,
DOI : 10.1016/j.electacta.2006.11.005
Ruthenium dioxide-based film electrodes, Journal of Applied Electrochemistry, vol.22, issue.2, pp.135-143, 1978. ,
DOI : 10.1007/BF00617671
Electrochemical and optical studies of thick oxide layers on iridium and their electrocatalytic activities for the oxygen evolution reaction, Journal of Electroanalytical Chemistry and Interfacial Electrochemistry, vol.86, issue.1, pp.89-104, 1978. ,
DOI : 10.1016/S0022-0728(78)80358-1
Oxygen evolution reaction on the iridium electrode in basic medium studied by electrochemical impedance spectroscopy, Electrochimica Acta, vol.39, issue.4, pp.39-581, 1994. ,
DOI : 10.1016/0013-4686(94)80104-5
Study of the oxygen evolution reaction on the iridium electrode in acid medium by eis, Electrochimica Acta, vol.39, issue.5, pp.39-667, 1994. ,
DOI : 10.1016/0013-4686(94)80009-X
Electrocatalysis in water electrolysis with solid polymer electrolyte, Electrochimica Acta, vol.48, issue.25-26, pp.3945-3952, 2003. ,
DOI : 10.1016/j.electacta.2003.04.001
Electrochemical investigation of eletcrocatalysts for the oxygen evolution reaction in PEM water electrolyzers, International Journal of Hydrogen Energy, pp.33-4955, 2008. ,
Characterization of membrane-electrode assemblies for solid polymer electrolyte water electrolysis, Journal of Applied Electrochemistry, vol.36, issue.2, pp.322-331, 1993. ,
DOI : 10.1007/BF00296687
Synthesis and characterization of electrocatalysts for the oxygen evolution in PEM water electrolysis, International Journal of Hydrogen Energy, vol.36, issue.17, pp.10474-10481, 2011. ,
DOI : 10.1016/j.ijhydene.2011.05.139
Electrochemical activity of ruthenium and iridium based catalysts for oxygen evolution reaction, Applied Catalysis B: Environmental, vol.111, issue.112, pp.111-112, 2012. ,
DOI : 10.1016/j.apcatb.2011.10.020
URL : https://hal.archives-ouvertes.fr/hal-00828774
Performance of a PEM water electrolysis using Ir x Ru y Ta z O 2 electrocatalysts for the oxygen evolution reaction, International Journal of Hydrogen Energy, pp.32-2320, 2007. ,
Electrochemical studies of Pt/Ir-IrO 2 eletcrocatalyst as a bifunctional oxygen electrode, International Journal of Hydrogen Energy, pp.37-59, 2012. ,
Electrode kinetics of oxygen reduction on oxide-free platinum electrodes, Electrochimica Acta, vol.12, issue.6, pp.615-628, 1967. ,
DOI : 10.1016/0013-4686(67)85030-8
Mechanisms of electrochemical reactions on non-metallic surfacesDioxygen electrocatalysis: mechanisms in relation to catalyst structure, NBS Special Publication Journal of Molecular Catalysis, vol.455, pp.203-219, 1976. ,
Investigations of the O[sub 2] Reduction Reaction at the Platinum/Nafion?? Interface Using a Solid-State Electrochemical Cell, Journal of The Electrochemical Society, vol.138, issue.4, pp.916-921, 1991. ,
DOI : 10.1149/1.2085747
Temperature Dependence of the Electrode Kinetics of Oxygen Reduction at the Platinum/Nafion?? Interface???A Microelectrode Investigation, Journal of The Electrochemical Society, vol.139, issue.9, pp.139-2530, 1992. ,
DOI : 10.1149/1.2221258
Pressure Dependence of the Oxygen Reduction Reaction at the Platinum Microelectrode/Nafion Interface: Electrode Kinetics and Mass Transport, Journal of The Electrochemical Society, vol.139, issue.10, pp.139-2856, 1992. ,
DOI : 10.1149/1.2068992
Electrolyte effects on oxygen reduction kinetics at platinum: A rotating ring-disc electrode analysis, Electrochimica Acta, vol.28, issue.5, pp.28-691, 1983. ,
DOI : 10.1016/0013-4686(83)85066-X
Distinction between Intermediates Produced in Main and Side Electrodic Reactions, The Journal of Chemical Physics, vol.1, issue.11, pp.45-4057, 1966. ,
DOI : 10.1016/0013-4686(64)85048-9
Oxygen reduction on a Highsurface area Pt/Vulcan carbon catalyst: a thin-film rotating ring-disk electrode study, Journal of Electroanalytical Chemistry, pp.495-134, 2001. ,
Oxygen Reduction on Carbon-Supported Pt???Ni and Pt???Co Alloy Catalysts, The Journal of Physical Chemistry B, vol.106, issue.16, pp.4181-4191, 2002. ,
DOI : 10.1021/jp013442l
Oxygen reduction on high surface area Pt-based alloy catalysts in comparison to well defined smooth bulk alloy electrodes, Electrochimica Acta, pp.47-3787, 2002. ,
Impedance studies of porous electrodes, Electrochimica Acta, vol.35, issue.10, pp.35-1579, 1990. ,
DOI : 10.1016/0013-4686(90)80013-E
Electrical Impedance of a Pore Wall for the Flooded-Agglomerate Model of Porous Gas-Diffusion Electrodes, Journal of The Electrochemical Society, vol.136, issue.6, pp.1594-1603, 1989. ,
DOI : 10.1149/1.2096975
Application of the Floodedagglomerate model to study oxygen reduction on thin porous coating rotating disk electrode, Journal of the Electrochemical Society, pp.141-431, 1994. ,
Studies of the limiting polarization behavior of gas diffusion electrodes with different platinum distributions and hydrophobic properties, Journal of Electroanalytical Chemistry, vol.391, issue.1-2, pp.391-101, 1995. ,
DOI : 10.1016/0022-0728(95)03939-E
Oxygen electrocatalysis on thin porous coating rotating platinum electrodes, Electrochimica Acta, vol.44, issue.8-9, pp.44-1329, 1998. ,
DOI : 10.1016/S0013-4686(98)00255-2
Electrocatalysis on noble metal and noble metal alloys dispersed on high surface area carbon, Journal of New Materials for Electrochemical Systems, vol.6, pp.1-8, 2003. ,
Oxygen reduction on well-defined platinum nanoparticles inside recast ionomer, Electrochimica Acta, vol.41, issue.2, pp.41-307, 1996. ,
DOI : 10.1016/0013-4686(95)00305-X
URL : https://hal.archives-ouvertes.fr/hal-00006371
Electrochemical characterization of oxygen reduction on Teflon-bonded gas diffusion electrodes, Electrochimica Acta, pp.40-1819, 1995. ,
RRDE study of oxygen reduction on Pt nanoparticles inside Nafion: H 2 O 2 production in PEMFC cathode conditions, Journal of Applied Electrochemistry, vol.30, issue.7, pp.839-844, 2000. ,
DOI : 10.1023/A:1003999818560
Oxygen reduction reaction kinetics and mechanism on platinum nanoparticles inside Nafion??, Journal of Electroanalytical Chemistry, vol.499, issue.1, pp.499-85, 2001. ,
DOI : 10.1016/S0022-0728(00)00492-7
PEM fuel cell Pt anode inhibition by carbon monoxide: Non-uniform behaviour of the cell caused by the finite hydrogen excess, Chemical Engineering Science, vol.65, issue.10, pp.65-3050, 2010. ,
DOI : 10.1016/j.ces.2010.01.029
URL : https://hal.archives-ouvertes.fr/hal-00799089
Validation expérimentale d'outils de modélisation d'une pile à combustible de type PEM, Chemical and Process Engineering. Institut National Polytechnique de Lorraine -INPL, 2005. ,
Electrochemical Characterization of the Active Surface in Carbon-Supported Platinum Electrocatalysts for PEM Fuel Cells, Journal of The Electrochemical Society, vol.109, issue.6, pp.770-775, 2003. ,
DOI : 10.1016/S0378-7753(02)00238-0
Development of a galvanostatic analysis technique as an in-situ diagnostic tool for PEMFC single cells and stacks, International Journal of Hydrogen Energy, vol.37, issue.7, pp.37-5891, 2012. ,
DOI : 10.1016/j.ijhydene.2011.12.152
Stability of Pt???Ni/C (1:1) and Pt/C electrocatalysts as cathode materials for polymer electrolyte fuel cells: Effect of ageing tests, Journal of Power Sources, vol.191, issue.2, pp.191-344, 2009. ,
DOI : 10.1016/j.jpowsour.2009.01.088
Evaluation of the stability and durability of Pt and Pt???Co/C catalysts for polymer electrolyte membrane fuel cells, Journal of Power Sources, vol.182, issue.1, pp.182-83, 2008. ,
DOI : 10.1016/j.jpowsour.2008.03.061
Synergistic effect of CeO2CeO2 modified Pt/C electrocatalysts on the performance of PEM fuel cells, International Journal of Hydrogen Energy, vol.32, issue.17, pp.4397-4401, 2007. ,
DOI : 10.1016/j.ijhydene.2007.05.041
Electrochemical durability of carbon nanotubes at 80??C, Journal of Power Sources, vol.178, issue.1, pp.75-79, 2008. ,
DOI : 10.1016/j.jpowsour.2007.12.002
Modeling the phenomena of dehydration and flooding of a polymer electrolyte membrane fuel cell, Journal of Power Sources, vol.187, issue.1, pp.165-181, 2009. ,
DOI : 10.1016/j.jpowsour.2008.10.102
Copper alloy bipolar plates for polymer electrolyte membrane fuel cell, Electrochimica Acta, vol.51, issue.28, pp.6338-6345, 2006. ,
DOI : 10.1016/j.electacta.2006.04.019
Synthesis, characterization and application of a Pd/Vulcan and Pd/C catalyst in a PEM fuel cell, International Journal of Hydrogen Energy, pp.29-915, 2004. ,
Modeling the phenomena of dehydration and flooding of a polymer electrolyte membrane fuel cell, Journal of Power Sources, vol.187, issue.1, pp.165-181, 2009. ,
DOI : 10.1016/j.jpowsour.2008.10.102
Modeling, simulation and experimental validation of a PEM fuel cell system, Computers & Chemical Engineering, vol.35, issue.9, pp.1886-1900, 2011. ,
DOI : 10.1016/j.compchemeng.2011.03.013
Hardware-in-the-Loop Testing of a Fuel Cell Aircraft Powerplant, Journal of Propulsion and Power, vol.11, issue.1, pp.25-1336, 2009. ,
DOI : 10.1016/S0360-3199(00)00121-X
AC impedance technique in PEM fuel cell diagnosis???A review, International Journal of Hydrogen Energy, vol.32, issue.17, pp.4365-4380, 2007. ,
DOI : 10.1016/j.ijhydene.2007.05.036
The numerical evaluation of the distortion of EIS data due to the distribution of parameters, Journal of Electroanalytical Chemistry, vol.432, issue.1-2, pp.79-83, 1997. ,
DOI : 10.1016/S0022-0728(97)00217-9
Impedances of electrochemical systems: terminology, nomenclature and representation Part I: Cells with metal electrodes and liquid solutions, Pure and Applied Chemistry, pp.66-1831, 1994. ,
An electrochemical oxygen separator using an ion-exchange membrane as the electrolyte, Journal of Applied Electrochemistry, vol.60, issue.6, pp.935-940, 1986. ,
DOI : 10.1007/BF01006541