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Electrochemically Driven Phase Transitions in Insertion Electrodes for Lithium-Ion Batteries: Examples in Lithium Metal Phosphate Olivines

机译:锂离子电池插入电极中的电化学驱动相变:锂金属磷酸盐橄榄石中的例子

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The thermodynamics and kinetics of phase transformations in electrochemical systems are reviewed. Phase transitions in LiMPO_4 (M = Fe, Mn, Ni, Co) olivines are highlighted. The phase transformation phenomena in LJMPO_4 are diverse and include thermodynamic effects of particle size and applied overpotential, the appearance of metastable phases, and the effects of defects from atomic disorder and aliovalent doping. Such phenomena also include kinetic effects such as interface motion and diffusion of Li-electron complexes. The nature of phase transitions directly influences electrode performance in battery applications. Reduced particle size and doping can reduce or eliminate room-temperature Li miscibility gaps, which in turn affect characteristics of state of charge versus voltage and the elastic energy due to volume mismatches between phases. Near the conditions for a phase transition, Li diffusion coefficients are reduced. Nucleation and growth kinetics produce a series of phase transition sequences, which can result in the accumulation of noncrystalline phases during electrochemical cycling.
机译:综述了电化学系统中相变的热力学和动力学。 LiMPO_4(M = Fe,Mn,Ni,Co)橄榄石的相变突出。 LJMPO_4中的相变现象是多种多样的,包括颗粒大小和施加的超电势的热力学效应,亚稳态相的出现以及原子无序和异端掺杂对缺陷的影响。这种现象还包括动力学效应,例如界面运动和锂电子络合物的扩散。相变的性质直接影响电池应用中的电极性能。减小的粒度和掺杂可以减少或消除室温Li的可混溶性间隙,由于相之间的体积失配,其反过来会影响充电状态对电压的特性以及弹性能。在相变的条件附近,Li扩散系数降低。成核和生长动力学产生一系列相变序列,这可能导致电化学循环过程中非晶相的积累。

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