ARC Centre of Excellence for Electromaterials Science, Department of Materials Engineering, Monash University, Wellington Road, Clayton, VIC 3800, Australia.
Phys Chem Chem Phys. 2013 Feb 7;15(5):1339-51. doi: 10.1039/c2cp43267f. Epub 2012 Nov 26.
Significant progress has been made recently in the development of Organic Ionic Plastic Crystals (OIPCs), a unique family of solid state electrolytes with applications in electrochemical devices such as lithium batteries and dye-sensitised solar cells. The negligible volatility of OIPCs renders them more suitable than molecular species for long-term device use, while the high thermal and electrochemical stability of many OIPCs fulfils an essential requirement for solid state electrolytes for many device applications. However, the complex mechanisms of conduction through these materials, both in their pure state and in the presence of a small amount of a second component (such as lithium salts to enable their use in lithium batteries) are still not fully understood. At the same time, the range of anions and cations utilised in the synthesis of plastic crystal phases continues to increase. This perspective concentrates on recent research into both fundamental and device-oriented aspects of these materials. Important fundamental understanding of the physical properties and transport mechanisms of different OIPCs has been achieved through use of techniques including variable temperature solid-state NMR and crystallographic analysis, as well as detailed molecular dynamics simulations. In parallel, the applicability of these materials as electrolytes for dye-sensitised solar cells and lithium batteries is being more widely demonstrated. The possibility of using OIPCs as solid state electrolytes for fuel cells is also discussed.
最近,在有机离子塑性晶体(OIPC)的开发方面取得了重大进展,这是一类独特的固态电解质,可应用于电化学器件,如锂电池和染料敏化太阳能电池。OIPC 的挥发性可忽略不计,使其比分子物种更适合长期器件使用,而许多 OIPC 的高热和电化学稳定性满足了许多器件应用中固态电解质的基本要求。然而,这些材料的传导机制,无论是在其纯态还是在少量第二组分(如锂盐,以使其能够用于锂电池)存在下,仍然没有被完全理解。与此同时,用于合成塑料晶体相的阴离子和阳离子的范围仍在不断增加。本观点集中于这些材料的基础研究和面向器件的研究的最新进展。通过使用包括变温固态 NMR 和晶体学分析以及详细的分子动力学模拟等技术,已经对不同 OIPC 的物理性质和输运机制有了重要的基本理解。同时,这些材料作为染料敏化太阳能电池和锂电池电解质的适用性也得到了更广泛的证明。还讨论了将 OIPC 用作固态电解质的燃料电池的可能性。