Ionogels, ionic liquid based hybrid materials

被引:1024
作者
Le Bideau, Jean [2 ]
Viau, Lydie [1 ]
Vioux, Andre [1 ]
机构
[1] Univ Montpellier 2, CNRS, Inst Charles Gerhardt Montpellier, ENSCM,UM1,UM2,UMR 5253, F-34095 Montpellier, France
[2] Univ Nantes, CNRS, Inst Mat Jean Rouxel IMN, F-44322 Nantes, France
关键词
SENSITIZED SOLAR-CELLS; PROTON-CONDUCTING MEMBRANES; SOLVENT-FREE ELECTROLYTES; WALLED CARBON NANOTUBES; POLYMER ELECTROLYTE; SILICA NANOPARTICLES; COMPOSITE MEMBRANES; DIRECT ELECTROCHEMISTRY; SELECTIVE TRANSPORT; IMIDAZOLIUM SALTS;
D O I
10.1039/c0cs00059k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The current interest in ionic liquids (ILs) is motivated by some unique properties, such as negligible vapour pressure, thermal stability and non-flammability, combined with high ionic conductivity and wide electrochemical stability window. However, for material applications, there is a challenging need for immobilizing ILs in solid devices, while keeping their specific properties. In this critical review, ionogels are presented as a new class of hybrid materials, in which the properties of the IL are hybridized with those of another component, which may be organic (low molecular weight gelator, (bio) polymer), inorganic (e.g. carbon nanotubes, silica etc.) or hybrid organic-inorganic (e.g. polymer and inorganic fillers). Actually, ILs act as structuring media during the formation of inorganic ionogels, their intrinsic organization and physicochemical properties influencing the building of the solid host network. Conversely, some effects of confinement can modify some properties of the guest IL, even though liquid-like dynamics and ion mobility are preserved. Ionogels, which keep the main properties of ILs except outflow, while allowing easy shaping, considerably enlarge the array of applications of ILs. Thus, they form a promising family of solid electrolyte membranes, which gives access to all-solid devices, a topical industrial challenge in domains such as lithium batteries, fuel cells and dyesensitized solar cells. Replacing conventional media, organic solvents in lithium batteries or water in proton-exchange-membrane fuel cells (PEMFC), by low-vapour-pressure and non flammable ILs presents major advantages such as improved safety and a higher operating temperature range. Implementation of ILs in separation techniques, where they benefit from huge advantages as well, relies again on the development of supported IL membranes such as ionogels. Moreover, functionalization of ionogels can be achieved both by incorporation of organic functions in the solid matrix, and by encapsulation of molecular species (from metal complexes to enzymes) in the immobilized IL phase, which opens new routes for designing advanced materials, especially (bio) catalytic membranes, sensors and drug release systems (194 references).
引用
收藏
页码:907 / 925
页数:19
相关论文
共 198 条
[1]   Model for the conductivity of ionic liquids based on an infinite dilution of holes [J].
Abbott, AP .
CHEMPHYSCHEM, 2005, 6 (12) :2502-2505
[2]   Solubility of CO2,CH4, C2H6, C2H4, O2, and N2 in 1-hexyl-3-methylpyridinium bis(trifluoromethylsulfonyl)imide:: Comparison to other ionic liquids [J].
Anderson, Jessica L. ;
Dixon, Janeille K. ;
Brennecke, Joan F. .
ACCOUNTS OF CHEMICAL RESEARCH, 2007, 40 (11) :1208-1216
[3]   Parallel developments in aprotic and protic ionic liquids: Physical chemistry and applications [J].
Angell, C. Austen ;
Byrne, Nolene ;
Belieres, Jean-Philippe .
ACCOUNTS OF CHEMICAL RESEARCH, 2007, 40 (11) :1228-1236
[4]   PROTON NMR-STUDIES OF THE LEWIS ACID-BASE REACTIONS BETWEEN PYRIDINIUM CHLORIDES AND THE ACIDS ZNCL2 AND ALCL3 [J].
ANGELL, CA ;
SHUPPERT, JW .
JOURNAL OF PHYSICAL CHEMISTRY, 1980, 84 (05) :538-542
[5]  
Armand M, 2009, NAT MATER, V8, P621, DOI [10.1038/NMAT2448, 10.1038/nmat2448]
[6]   High-performance dye-sensitized solar cells based on solvent-free electrolytes produced from eutectic melts [J].
Bai, Yu ;
Cao, Yiming ;
Zhang, Jing ;
Wang, Mingkui ;
Li, Renzhi ;
Wang, Peng ;
Zakeeruddin, Shaik M. ;
Graetzel, Michael .
NATURE MATERIALS, 2008, 7 (08) :626-630
[7]   Improving CO2 permeability in polymerized room-temperature ionic liquid gas separation membranes through the formation of a solid composite with a room-temperature ionic liquid [J].
Bara, Jason E. ;
Hatakeyama, Evan S. ;
Gin, Douglas L. ;
Noble, Richard D. .
POLYMERS FOR ADVANCED TECHNOLOGIES, 2008, 19 (10) :1415-1420
[8]   Preparation of homogeneously dispersed multiwalled carbon nanotube/polystyrene nanocomposites via melt extrusion using trialkyl imidazolium compatibilizer [J].
Bellayer, S ;
Gilman, JW ;
Eidelman, N ;
Bourbigot, S ;
Flambard, X ;
Fox, DM ;
De Long, HC ;
Trulove, PC .
ADVANCED FUNCTIONAL MATERIALS, 2005, 15 (06) :910-916
[9]   Immobilization of ionic liquids in translucent tin dioxide monoliths by sol-gel processing [J].
Bellayer, Severine ;
Viau, Lydie ;
Tebby, Zoe ;
Toupance, Thierry ;
Le Bideau, Jean ;
Vioux, Andre .
DALTON TRANSACTIONS, 2009, (08) :1307-1313
[10]   Nanoconfined ionic liquids: effect of surface charges on flow and molecular layering [J].
Bou-Malham, Ibrahim ;
Bureau, Lionel .
SOFT MATTER, 2010, 6 (17) :4062-4065