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铅种锗纳米线和支化纳米线网络的溶液合成及其在锂离子电池阳极中的应用。

Solution synthesis of lead seeded germanium nanowires and branched nanowire networks and their application as Li-ion battery anodes.

机构信息

Department of Chemical Sciences and Bernal Institute, University of Limerick, Limerick, Ireland.

出版信息

Nanotechnology. 2017 Jun 23;28(25):255603. doi: 10.1088/1361-6528/aa72c7. Epub 2017 May 12.

Abstract

Herein, we report the high density growth of lead seeded germanium nanowires (NWs) and their development into branched nanowire networks suitable for application as lithium ion battery anodes. The synthesis of the NWs from lead seeds occurs simultaneously in both the liquid zone (solution-liquid-solid (SLS) growth) and solvent rich vapor zone (vapor-liquid-solid (VLS) growth) of a high boiling point solvent growth system. The reaction is sufficiently versatile to allow for the growth of NWs directly from either an evaporated catalyst layer or from pre-defined nanoparticle seeds and can be extended to allowing extensive branched nanowire formation in a secondary reaction where these seeds are coated onto existing wires. The NWs are characterized using TEM, SEM, XRD and DF-STEM. Electrochemical analysis was carried out on both the single crystal Pb-Ge NWs and the branched Pb-Ge NWs to assess their suitability for use as anodes in a Li-ion battery. Differential capacity plots show both the germanium wires and the lead seeds cycle lithium and contribute to the specific capacity that is approximately 900 mAh g for the single crystal wires, rising to approximately 1100 mAh g for the branched nanowire networks.

摘要

在此,我们报告了高密度生长的铅种锗纳米线(NWs)及其发展成为适合用作锂离子电池阳极的分支纳米线网络。NWs 从铅种子中同时在高沸点溶剂生长系统的液相区(溶液-液相-固相等离子体(SLS)生长)和溶剂富气相区(气相-液相-固相等离子体(VLS)生长)中合成。该反应非常通用,可以允许 NWs 直接从蒸发催化剂层或从预定义的纳米颗粒种子中生长,并且可以扩展到允许在二次反应中形成广泛的分支纳米线,其中这些种子涂覆在现有线上。使用 TEM、SEM、XRD 和 DF-STEM 对 NWs 进行了表征。对单晶 Pb-Ge NWs 和分支 Pb-Ge NWs 进行了电化学分析,以评估它们作为锂离子电池阳极的适用性。差分容量图显示,锗线和铅种子都循环锂,并对大约 900 mAh g 的单晶线的比容量做出贡献,对于分支纳米线网络,比容量上升到大约 1100 mAh g。

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