## Abstract Composite membranes are of interest for PEMFCs and DMFCs. This paper describes a basic study of the influence of silica on the proton conductivity: (i) added as a filler to poly(vinylidene fluoride‐hexafluoropropylene) and poly(benzimidazole)‐based membranes activated with H~3~PO~4~, or
Plasma-Polymerised Proton Conductive Membranes for a Miniaturised PEMFC
✍ Scribed by H. Mahdjoub; S. Roualdès; P. Sistat; N. Pradeilles; J. Durand; G. Pourcelly
- Publisher
- John Wiley and Sons
- Year
- 2005
- Tongue
- English
- Weight
- 834 KB
- Volume
- 5
- Category
- Article
- ISSN
- 1615-6846
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✦ Synopsis
Abstract
Thin films, containing fluorocarbons and sulphonic acid groups, were prepared by plasma polymerisation of 1,3‐butadiene/CF~3~SO~3~H and styrene/CF~3~SO~3~H mixtures using two different types of plasma discharges. The morphology, density, and chemical composition of the synthesised plasma polymers were examined by SEM, small‐angle X‐ray reflectometry, and FTIR and XPS analyses, respectively. Proton conductivity was measured with electrochemical impedance spectroscopy. The prepared films are relatively uniform and free from defects. Plasma materials exhibiting higher sulphonic acid group contents and lower densities are those formed, from the styrene/CF~3~SO~3~H mixture, in the after glow discharge configuration; which proves that the kind of discharge and the nature of the monomer mixture have a large influence on the microstructure of plasma materials. Consequently, plasma films, prepared in the after glow discharge from the styrene/CF~3~SO~3~H mixture, show proton conductivities (up to 9.8 × 10^–2^ mS cm^–1^) about one order of magnitude higher than films prepared in the glow discharge (up to 2.2 × 10^–3^ mS cm^–1^ and 2.5 × 10^–3^ mS cm^–1^ for films prepared from 1,3‐butadiene/CF~3~SO~3~H and styrene/CF~3~SO~3~H mixtures, respectively). When compared to the commercially available Nafion®, the reference electrolyte polymer in the PEMFC, our most competitive plasma polymers are intrinsically 100 times less conductive. Nevertheless, due to their thinness (about 1 μm), these plasma films show specific resistances (about 1.0 Ω cm^2^), which are lower than that of the Nafion® membrane (1.9 Ω cm^2^ specific resistance). This explains their potential significance as polymer electrolyte membranes in a miniaturised PEMFC.
📜 SIMILAR VOLUMES
Polybenzimidazole (PBI) is the material of choice to fabricate proton exchange membranes for high temperature PEMFCs. Among the most recent trends in the design of PBI polymers, we recall the introduction of oxygen atoms in the polymer backbone. In fact, the presence of ether groups improves the pol
## Abstract A new membrane material has been developed, based on a polysiloxane framework with functional proton conducting groups such as sulfonic acid and heterocyclic groups, e.g., imidazole and benzimidazole, covalently bonded at the siloxane backbone. Sulfonated siloxane based block‐copolymers