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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >In situ formation of aluminum-silicon-lithium active materials in aluminum matrices for lithium-ion batteries
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In situ formation of aluminum-silicon-lithium active materials in aluminum matrices for lithium-ion batteries

机译:原位形成铝基 - 锂离子电池铝基硅 - 硅锂活性材料

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Despite the tremendous theoretical capacities of new materials for lithium-ion battery (LIB) anodes (e.g. Si, Sn, etc.), the conventional design of these electrodes with binders, current collectors, and conductivity enhancers inhibit the translation of performance gains during commercialization. Therefore, consideration should be given to monolithic materials systems which can increase performance while simultaneously reducing design complexity. In the present study, aluminum-silicon thin-films were synthesized with compositions ranging from 0 to 45 at% Si, and the structure, morphology, and electrochemical behavior of the material as an electrode for LIBs were investigated. This analysis confirms that the Li9AlSi3 phase is formed during initial lithiation, prior to the formation of the beta phase, and is recognized as the dominant phase in the Al-Si-Li alloy system. These findings also show that by preventing the formation of the beta phase during lithiation of the electrode results in an excellent cycling life performance of 70 at% Al-30 at% Si electrode over 100 cycles at the rate of C/20 and a specific capacity of 650 mA h g(-1). In situ stress measurements and ex situ SEM analysis performed during cycling confirm the reversibility such that no degradation or delamination is observed in the films despite the high capacity and long-term cycling.
机译:尽管锂离子电池(Lib)阳极(例如Si,Sn等)的新材料的巨大理论能力,但具有粘合剂,集电器和电导率增强剂的这些电极的常规设计抑制了商业化期间性能提升的翻译。因此,应考虑到整体材料系统,可以提高性能,同时降低设计复杂性。在本研究中,研究了铝 - 硅薄膜,用0〜45的组合物合成,并研究了材料作为Libs电极的材料的结构,形态和电化学行为。该分析证实,在形成β相的初始锂化期间,在初始锂化期间形成Li9Asi3相,并且被认为是Al-Si-Li合金系统中的主要相。这些发现还表明,通过防止在电极的锂化期间形成β相导致在C / 20的速率和特定容量的100个循环中优异的循环寿命性能70at%Si电极。 650 mA hg(-1)。在循环期间进行的原位应力测量和EX原位SEM分析证实了可逆性,使得尽管能够高容量和长期循环,但在薄膜中没有观察到降解或分层。

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