G. Sdanghi, Review of the current technologies and performances of hydrogen compression for stationary and automotive applications, Renewable and Sustainable Energy Reviews, vol.102, pp.150-170, 2019.
URL : https://hal.archives-ouvertes.fr/hal-02014572

M. Suermann, Electrochemical Hydrogen Compression: Efficient Pressurization Concept Derived from an Energetic Evaluation, Journal of the Electrochemical Society, issue.12, p.164, 2017.

Z. Abdin, PEM fuel cell model and simulation in Matlab-Simulink based on physical parameters, vol.116, pp.1131-1144, 2016.

K. Onda, Separation and compression characteristics of hydrogen by use of proton exchange membrane, Journal of Power Sources, issue.1, pp.1-8, 2007.

T. E. Springer, Polymer Electrolyte Fuel Cell Model, Journal of the Electrochemical Society, issue.8, pp.2334-2342, 1991.

A. Goshtasbi, Computationally Efficient Pseudo-2D Non-Isothermal Modeling of Polymer Electrolyte Membrane Fuel Cells with Two-Phase Phenomena, Journal of the Electrochemical Society, issue.13, p.163, 2016.

B. Rohland, Electrochemical hydrogen compressor. Electrochemical Acta, 1998.

S. Abbou, Local potential evolutions during proton exchange membrane fuel cell operation with dead-ended-anode -Part I: Impact of water diffusion and nitrogen crossover, Journal of Power Sources, vol.340, pp.337-346, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01687918

S. Abbou, Local potential evolutions during proton exchange membrane fuel cell operation with dead-ended-anode -Part II: Aging mitigation strategies based on water management and nitrogen crossover, vol.340, pp.419-427, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01687920

P. Costamagna, Transport phenomena in polymeric membrane fuel cells, Chemical Engineering Science, issue.2, pp.323-332, 2001.