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Fuel Cells II
(Englisch)
Advances in Polymer Science 216
Scherer, Günther G.

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Fuel Cells II

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Highest Impact Factor of all journals ranked by ISI within Polymer Science

Short and concise reports on physics and chemistry of polymers, each written by the world renowned experts

Still valid and useful after 5 or 10 years

The electronic version is available free of charge for standing order customers at: springer.com/series/12/


Highest Impact Factor of all journals ranked by ISI within Polymer Science

Short and concise reports on physics and chemistry of polymers, each written by the world renowned experts

Still valid and useful after 5 or 10 years

The electronic version is available free of charge for standing order customers at: springer.com/series/12/

Includes supplementary material: sn.pub/extras


See table of contents

G. Maier, J. Meier-Haack: Sulfonated Aromatic Polymers for Fuel Cell Membranes.- J. Mader, L. Xiao, T. Schmidt, B.C. Benicewicz: Polybenzimidazole/Acid Complexes as High Temperature Membranes.- A.L. Rusanov, P.V. Kostoglodov, M.J.M. Abadie, V. Y. Voytekunas, D.Y. Likhachev: Proton-Conducting Polymers and Membranes Carrying Phosphonic Acid Groups.- R. Wycisk, P.N. Pintauro: Polyphosphazene Membranes for Fuel Cells.- C. Marestin, G. Gebel, O. Diat, R. Mercier: Sulfonated Polyimides.-


The concept to utilize an ion-conducting polymer membrane as a solid po- mer electrolyte offers several advantages regarding the design and operation of an electrochemical cell, as outlined in Volume 215, Chapter 1 (L. Gubler, G.G. Scherer). Essentially, the solvent and/or transport medium, e.g., H O, 2 + for the mobile ionic species, e.g., H for a cation exchange membrane, is taken up by and con?ned into the nano-dimensional morphology of the i- containingdomainsofthepolymer.Asaconsequence, aphaseseparationinto a hydrophilic ion-containing solvent phase and a hydrophobic polymer ba- bone phase establishes. Because of the narrow solid electrolyte gap in these cells, low ohmic losses reducing the overall cell voltage can be achieved, even at highcurrent densities. This concept was applied to fuel cell technology at a very early stage; h- ever, performance and reliability of the cells were low due to the dissatisfying membrane properties at that time. The development of per?uoro sulfonate and carboxylate-type membranes, in particular for the chlor-alkali process, directly fostered the further development of proton-conducting membranes and, as a consequence, also the progress in this type of fuel cell technology (polymer electrolyte fuel cell,PEFC).
Sulfonated Aromatic Polymers for Fuel Cell Membranes.- Polybenzimidazole/Acid Complexes as High-Temperature Membranes.- Proton-Conducting Polymers and Membranes Carrying Phosphonic Acid Groups.- Polyphosphazene Membranes for Fuel Cells.- Sulfonated Polyimides.

Inhaltsverzeichnis



Sulfonated Aromatic Polymers for Fuel Cell Membranes.- Polybenzimidazole/Acid Complexes as High-Temperature Membranes.- Proton-Conducting Polymers and Membranes Carrying Phosphonic Acid Groups.- Polyphosphazene Membranes for Fuel Cells.- Sulfonated Polyimides.


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See table of contents




Highest Impact Factor of all journals ranked by ISI within Polymer Science

Short and concise reports on physics and chemistry of polymers, each written by the world renowned experts

Still valid and useful after 5 or 10 years

The electronic version is available free of charge for standing order customers at: springer.com/series/12/

Includes supplementary material: sn.pub/extras

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