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Nanostructured Si_((1- x))Ge_x for tunable thin film lithium-ion battery anodes

机译:用于可调薄膜锂离子电池阳极的纳米结构Si _((1- x))Ge_x

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摘要

Both silicon and germanium are leading candidates to replace the carbon anode of lithium ions batteries. Silicon is attractive because of its high lithium storage capacity while germanium, a superior electronic and ionic conductor, can support much higher charge/discharge rates. Here we investigate the electronic, electrochemical and optical properties of Si _((1-x))Ge_x thin films with x = 0, 0.25, 0.5, 0.75, and 1. Glancing angle deposition provided amorphous films of reproducible nanostructure and porosity. The film's composition and physical properties were investigated by X-ray photoelectron spectroscopy, four-point probe conductivity, Raman, and UV-vis absorption spectroscopy. The films were assembled into coin cells to test their electrochemical properties as a lithium-ion battery anode material. The cells were cycled at various C-rates to determine the upper limits for high rate performance. Adjusting the composition in the Si_((1-x))Ge_x system demonstrates a trade-off between rate capability and specific capacity. We show that high-capacity silicon anodes and high-rate germanium anodes are merely the two extremes; the composition of Si_((1-x))Ge_x alloys provides a new parameter to use in electrode optimization.
机译:硅和锗都是替代锂离子电池碳阳极的主要候选材料。硅因其高的锂存储容量而具有吸引力,而锗(一种优异的电子和离子导体)可以支持更高的充电/放电速率。在这里,我们研究x = 0、0.25、0.5、0.75和1的Si _((1-x))Ge_x薄膜的电子,电化学和光学性质。掠射角沉积提供了可再现的纳米结构和孔隙率的非晶膜。通过X射线光电子能谱,四点探针电导率,拉曼和紫外可见吸收光谱研究了膜的组成和物理性能。将薄膜组装成纽扣电池,以测试其作为锂离子电池负极材料的电化学性能。将电池以各种C速率循环以确定高速率性能的上限。调整Si _((1-x))Ge_x系统中的成分可证明在速率能力和比容量之间进行权衡。我们表明,高容量硅阳极和高倍率锗阳极只是两个极端。 Si _((1-x))Ge_x合金的成分为电极优化提供了新的参数。

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