Design and properties of functional hybrid organic-inorganic membranes for fuel cells

被引:446
作者
Laberty-Robert, C.
Valle, K. [1 ]
Pereira, F. [1 ]
Sanchez, C.
机构
[1] CEA Le Ripault, Lab Sol Gel & Simulat, Dept Mat, F-37260 Monts, France
关键词
POLYMER ELECTROLYTE MEMBRANES; PROTON-CONDUCTING MEMBRANES; X-RAY-SCATTERING; SOL-GEL REACTION; FREE ZEOLITE NANOCRYSTALS; MEDIUM-TEMPERATURE RANGE; ION-EXCHANGE MEMBRANES; POLYETHER ETHER KETONE; SULFONATED ENGINEERING POLYMERS; PERFLUOROSULFONIC ACID IONOMER;
D O I
10.1039/c0cs00144a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This critical review presents a discussion on the major advances in the field of organic-inorganic hybrid membranes for fuel cells application. The hybrid organic-inorganic approach, when the organic part is not conductive, reproduces to some extent the behavior of Nafion where discrete hydrophilic and hydrophilic domains are homogeneously distributed. A large variety of proton conducting or non conducting polymers can be combined with various functionalized, inorganic mesostructured particles or an inorganic network in order to achieve high proton conductivity, and good mechanical and chemical properties. The tuning of the interface between these two components and the control over chemical and processing conditions are the key parameters in fabricating these hybrid organic-inorganic membranes with a high degree of reproducibility. This dynamic coupling between chemistry and processing requires the extensive use and development of complementary ex situ measurements with in situ characterization techniques, following in real time the molecular precursor solutions to the formation of the final hybrid organic-inorganic membranes. These membranes combine the intrinsic physical and chemical properties of both the inorganic and organic components. The development of the sol-gel chemistry allows a fine tuning of the inorganic network, which exhibits acid-based functionalized pores (-SO3H, -PO3H2, -COOH), tunable pore size and connectivity, high surface area and accessibility. As such, these hybrid membranes containing inorganic materials are a promising family for controlling conductivity, mechanical and chemical properties (349 references).
引用
收藏
页码:961 / 1005
页数:45
相关论文
共 330 条
[31]  
Brinker C.J., 1989, Sol-Gel Science: The Physics and Chemistry of Sol-Gel Processing
[32]  
Brinker CJ, 1999, ADV MATER, V11, P579, DOI 10.1002/(SICI)1521-4095(199905)11:7<579::AID-ADMA579>3.3.CO
[33]  
2-I
[34]   Breath figures as a dynamic templating method for polymers and nanomaterials [J].
Bunz, UHF .
ADVANCED MATERIALS, 2006, 18 (08) :973-989
[35]   Nafion-clay hybrids with a network structure [J].
Burgaz, Engin ;
Lian, Huiqin ;
Alonso, Rafael Herrera ;
Estevez, Luis ;
Kelarakis, Antonios ;
Giannelis, Emmanuel P. .
POLYMER, 2009, 50 (11) :2384-2392
[36]   Studies of the hydrolysis of ethyl and tert-butyl phosphonates covalently bonded to silica xerogels [J].
Carbonneau, C ;
Frantz, R ;
Durand, JO ;
Granier, M ;
Lanneau, GF ;
Corriu, RJP .
JOURNAL OF MATERIALS CHEMISTRY, 2002, 12 (03) :540-545
[37]   AC CONDUCTIVITY OF ALPHA-LAYERED ZIRCONIUM-PHOSPHATE IN THE PRESENCE OF WATER-VAPOR AT 100-200-DEGREES-C [J].
CASCIOLA, M ;
MARMOTTINI, F ;
PERAIO, A .
SOLID STATE IONICS, 1993, 61 (1-3) :125-129
[38]   Recent Progress on Nafion-Based Nanocomposite Membranes for Fuel Cell Applications [J].
Cele, Nonhlanhla ;
Ray, Suprakas Sinha .
MACROMOLECULAR MATERIALS AND ENGINEERING, 2009, 294 (11) :719-738
[39]   Nafion/TiO2 proton conductive composite membranes for PEMFCs operating at elevated temperature and reduced relative humidity [J].
Chalkova, E ;
Pague, MB ;
Fedkin, MV ;
Wesolowski, DJ ;
Lvov, SN .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2005, 152 (06) :A1035-A1040
[40]   19F and 13C NMR signal assignment and analysis in a perfluorinated ionomer (Nafion) by two-dimensional solid-state NMR [J].
Chen, Q ;
Schmidt-Rohr, K .
MACROMOLECULES, 2004, 37 (16) :5995-6003