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Cubic Crystal-Structured SnTe for Superior Li- and Na-Ion Battery Anodes

机译:用于上级Li-和Na离子电池阳极的立方晶体结构SNTE

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摘要

A cubic crystal-structured Sn-based compound, SnTe, was easily synthesized using a solid-state synthetic process to produce a better rechargeable battery, and its possible application. as a Sn-based high-capacity anode material for Li-ion batteries (LIBs) and Na-ion batteries (NIBs) was investigated. The electrochemically driven phase change mechanisms of the SnTe electrodes during Li and Na insertion/extraction were thoroughly examined utilizing various ex situ analytical techniques. During Li insertion, SnTe was converted to Li4.25Sn and Li2Te; meanwhile, during Na insertion, SnTe experienced a sequential topotactic transition to NaxSnTe (x <= 1.5) and conversion to Na3.75Sn and Na2Te, which recombined into the original SnTe phase after full Li and Na extraction. The distinctive phase change mechanisms provided remarkable electrochemical Li- and Na-ion storage performances, such as large reversible capacities with high Coulombic efficiencies and stable cyclabilities with fast C-rate characteristics, by preparing amorphous-C-decorated nanostructured SnTe-based composites. Therefore, SnTe, with its interesting phase change mechanisms, will be a promising alternative for the oncoming generation of anode materials for LIBs and NIBs.
机译:使用固态的合成方法容易地合成立方晶体结构的Sn基化合物,以产生更好的可充电电池及其应用。作为锂离子电池(LIBS)和Na离子电池(NIBS)的基于SN基的高容量阳极材料。利用各种非原位分析技术,彻底检查了Li和Na插入/提取期间的SNET电极的电化学驱动的相变机制。在Li插入期间,SNTE转换为LI4.25SN和LI2TE;同时,在Na插入期间,SNTE在纳克斯纳(X <= 1.5)中经历了顺序拓扑转变,并转化为NA3.75SN和NA2TE,其在全LI和NA提取后重新组合于原始SNET相中。独特的相变机制提供了显着的电化学Li-和Na离子储存性能,例如通过制备无定形-C装饰的纳米结构的基于SNTE基复合材料,具有高库仑效率和具有快速C速率特性的稳定循环的可逆容量。因此,具有其有趣的相变机制的SNTE将是迎面而来的阳极材料的有前途的替代品,用于LIBS和NIBS。

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