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Silicon nanowire core aluminum shell coaxial nanocomposites for lithium ion battery anodes grown with and without a TIN interlayer

机译:用于有和没有TIN中间层的锂离子电池阳极的硅纳米线芯铝壳同轴纳米复合材料

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摘要

We investigated the effect of aluminum coating layers and of the support growth substrates on the electrochemical performance of silicon nanowires (SiNWs) used as negative electrodes in lithium ion battery half-cells. Extensive TEM and SEM analysis was utilized to detail the cycling induced morphology changes in both the Al-SiNW nanocomposites and in the baseline SiNWs. We observed an improved cycling performance in the Si nanowires that were coated with 3 and 8 wt.% aluminum. After 50 cycles, both the bare and the 3 wt.% Al coated nanowires retained 2600 mAh/g capacity. However beyond 50 cycles, the coated nanowires showed higher capacity as well as better capacity retention with respect to the first cycle. Our hypothesis is that the nanoscale yet continuous electrochemically active aluminum shell places the Si nanowires in compression, reducing the magnitude of their cracking/ disintegration and the subsequent loss of electrical contact with the electrode. We combined impedance spectroscopy with microscopy analysis to demonstrate how the Al coating affects the solid electrolyte interface (SEI). A similar thickness alumina (Al2O3) coating, grown via atomic layer deposition (ALD), was shown not to be as effective in reducing the long-term capacity loss. We demonstrate that an electrically conducting TiN barrier layer present between the nanowires and the underlying stainless steel current collector leads to a higher specific capacity during cycling and a significantly improved coulombic efficiency. Using TiN the irreversible capacity loss was only 6.9% from the initial 3581 mAh/g, while the first discharge (lithiation) capacity loss was only 4%. This is one of the best combinations reported in literature.
机译:我们研究了铝涂层和支撑生长衬底对用作锂离子电池半电池负极的硅纳米线(SiNWs)电化学性能的影响。广泛的TEM和SEM分析被用来详细说明Al-SiNW纳米复合材料和基线SiNWs的循环诱导形态变化。我们观察到涂有3%和8%(重量)铝的Si纳米线的循环性能得到了改善。在50次循环之后,裸露的和3重量%的Al涂覆的纳米线都保持了2600mAh / g的容量。然而,超过50个循环,相对于第一循环,涂覆的纳米线表现出更高的容量以及更好的容量保持性。我们的假设是,纳米级连续的电化学活性铝壳使Si纳米线处于受压状态,从而减小了其开裂/崩解的程度以及随后与电极之间的电接触损失。我们将阻抗谱与显微镜分析相结合,以证明Al涂层如何影响固体电解质界面(SEI)。通过原子层沉积(ALD)生长的类似厚度的氧化铝(Al2O3)涂层在减少长期容量损失方面并不有效。我们证明了存在于纳米线和下面的不锈钢集电器之间的导电TiN势垒层导致循环期间更高的比容量和显着提高的库仑效率。使用TiN的不可逆容量损失仅比初始3581 mAh / g高6.9%,而首次放电(锂化)容量损失仅为4%。这是文献报道的最佳组合之一。

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