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Do not forget the electrochemical characteristics of the membrane electrode assembly when designing a Proton Exchange Membrane Fuel Cell stack
Authors:Claude Lamy  Deborah J Jones  Christophe Coutanceau  Pascal Brault  Sergueï Martemianov  Yann Bultel
Affiliation:aCNRS GDR n° 2985 (PACTE), University of Poitiers, 40 Avenue du Recteur Pineau, 86022 Poitiers Cedex, France;bInstitut Charles Gerhardt, UMR 5253, CNRS-Université Montpellier 2, Aggregates, Interfaces and Energy Materials, Place Eugène Bataillon, 34095 Montpellier Cedex 5, France;cLaboratory of Electrocatalysis, LACCO, CNRS UMR 6503, University of Poitiers, 40 Avenue du Recteur Pineau, 86022 Poitiers Cedex, France;dGREMI, UMR6606, CNRS - Université d’Orléans, 14 rue d’Issoudun, BP6744, F-45067 Orleans Cedex 2, France;eInstitut Pprime, UPR 3346, CNRS - Université de Poitiers, ENSMA, 40 avenue du Recteur Pineau, 86022 Poitiers, France;fLaboratoire d’Electrochimie et de Physico-chimie des Matériaux et des Interfaces, UMR CNRS-GINP-UJF 5279, 1130 rue de la piscine, BP75, 38042 Saint-Marin d’Hères, France
Abstract:The membrane electrode assembly (MEA) is the key component of a PEMFC stack. Conventional MEAs are composed of catalyzed electrodes loaded with 0.1–0.4 mgPt cm−2 pressed against a Nafion® membrane, leading to cell performance close to 0.8 W cm−2 at 0.6 V. Due to their limited stability at high temperatures, the cost of platinum catalysts and that of proton exchange membranes, the recycling problems and material availability, the MEA components do not match the requirements for large scale development of PEMCFs at a low cost, particularly for automotive applications.Novel approaches to medium and high temperature membranes are described in this work, and a composite polybenzimidazole–poly(vinylphosphonic) acid membrane, stable up to 190 °C, led to a power density of 0.5 W cm−2 at 160 °C under 3 bar abs with hydrogen and air. Concerning the preparation of efficient electrocatalysts supported on a Vulcan XC72 carbon powder, the Bönnemann colloidal method and above all plasma sputtering allowed preparing bimetallic platinum-based electrocatalysts with a low Pt loading. In the case of plasma deposition of Pt nanoclusters, Pt loadings as low as 10 μg cm−2 were achieved, leading to a very high mass power density of ca. View the MathML source. Finally characterization of the MEA electrical properties by Electrochemical Impedance Spectroscopy (EIS) based on a theoretical model of mass and charge transport inside the active and gas diffusion layers, together with the optimization of the operating parameters (cell temperature, humidity, flow rate and pressure) allowed obtaining electrical performance greater than 1.2 W cm−2 using an homemade MEA with a rather low Pt loading.
Keywords:Membrane electrode assembly (MEA)  Novel medium-high temperature membranes  Synthesis of low Pt loading catalysts  EIS characterization  MEA optimization
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