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首页> 外文期刊>Nanotechnology >Multi-walled carbon-nanotube-decorated tungsten ditelluride nanostars as anode material for lithium-ion batteries
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Multi-walled carbon-nanotube-decorated tungsten ditelluride nanostars as anode material for lithium-ion batteries

机译:多壁碳纳米管装饰的钨Ditelluide Nanostars作为锂离子电池的阳极材料

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摘要

Multi-walled carbon-nanotube (MWCNT)-decorated WTe2 nanostars (WTe2@CNT nanocomposites) are to be employed for the first time as anode candidates in the development of lithium-ion (Li-ion) batteries. WTe2@CNT nanocomposites deliver a high discharge capacity of 1097, 475, 439, 408, 395 and 381 mA h g(-1) with an increasing current density of 100, 200, 400, 600, 800 and 1000 mA g(-1), respectively, while WTe2 nanostars exhibit a reversible capacity of 655, 402, 400, 362, 290 and 197 mA h g(-1) with the aforementioned current densities. Furthermore, WTe2@CNT nanocomposites exhibit a superior reversible capacity of 592 mA h g(-1) at 500 mA g(-1) with a capacity retention of 100% achieved over 500 cycles, while bare WTe2 nanostars deliver similar to 85 mA h g(-1) over 350 cycles. This remarkable Li cycling performance is attributed to MWCNTs interconnected with WTe2 nanostars. In addition, the exposed active interlayers of the WTe2 nanostars, which are responsible for maintaining the structural integrity of the electrodes, buffer the large volume expansion within the WTe2 nanostars, avoiding the agglomeration of the particles. The layered WTe2 nanostars were synthesized via the solution-phase method, and present extremely good possibilities for the scaling-up of Li-ion battery storage systems.
机译:多壁碳纳米管(MWCNT) - 更改的WTE2NANOSTARS(WTE2 @ CNT纳米复合材料)将首次使用作为锂离子(锂离子)电池的阳极候选。 WTE2 @ CNT纳米复合材料可提供1097,475,439,408,395和381Ma Hg(-1)的高放电容量,其电流密度增加100,200,400,600,800和1000 mA g(-1)分别,虽然WTE2纳米稳定条件具有655,402,400,362,290和197mA Hg(-1)的可逆容量,其具有上述电流密度。此外,WTE2 @ CNT纳米复合材料在500mA G(-1)下表现出592 mA Hg(-1)的优异可逆容量,其容量保持100%以上实现500次循环,而裸WTE2NAnostars可类似于85 mA Hg( -1)超过350个周期。这种显着的Li循环性能归因于与WTE2 NanoStars互连的MWCNT。另外,WTE2纳米稳定的暴露的有源层间粘合剂,其负责维持电极的结构完整性,缓冲在WTE2纳米内的大容量膨胀,避免颗粒的附聚。通过解决方案方法合成分层的WTE2纳米载体,并对锂离子电池储存系统的缩放产生极好的可能性。

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