阳极
材料科学
纳米技术
碳纳米管
储能
锂(药物)
纳米材料
纳米复合材料
电化学
纳米结构
电极
碳纤维
纳米颗粒
复合数
复合材料
化学
医学
功率(物理)
物理
物理化学
量子力学
内分泌学
作者
Elisa Thauer,Alexander Ottmann,P. A. Schneider,Lucas Möller,Lukas Deeg,Rouven Zeus,Florian Wilhelmi,Lucas Schlestein,Christoph Neef,Rasha Ghunaim,Markus Gellesch,Christian Nowka,Maik Scholz,Marcel Haft,S. Wurmehl,Karolina Wenelska,Ewa Mijowska,Aakanksha Kapoor,A. Bajpai,Silke Hampel
出处
期刊:Molecules
[Multidisciplinary Digital Publishing Institute]
日期:2020-02-27
卷期号:25 (5): 1064-1064
被引量:33
标识
DOI:10.3390/molecules25051064
摘要
Downsizing well-established materials to the nanoscale is a key route to novel functionalities, in particular if different functionalities are merged in hybrid nanomaterials. Hybrid carbon-based hierarchical nanostructures are particularly promising for electrochemical energy storage since they combine benefits of nanosize effects, enhanced electrical conductivity and integrity of bulk materials. We show that endohedral multiwalled carbon nanotubes (CNT) encapsulating high-capacity (here: conversion and alloying) electrode materials have a high potential for use in anode materials for lithium-ion batteries (LIB). There are two essential characteristics of filled CNT relevant for application in electrochemical energy storage: (1) rigid hollow cavities of the CNT provide upper limits for nanoparticles in their inner cavities which are both separated from the fillings of other CNT and protected against degradation. In particular, the CNT shells resist strong volume changes of encapsulates in response to electrochemical cycling, which in conventional conversion and alloying materials hinders application in energy storage devices. (2) Carbon mantles ensure electrical contact to the active material as they are unaffected by potential cracks of the encapsulate and form a stable conductive network in the electrode compound. Our studies confirm that encapsulates are electrochemically active and can achieve full theoretical reversible capacity. The results imply that encapsulating nanostructures inside CNT can provide a route to new high-performance nanocomposite anode materials for LIB.
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