首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Facile synthesis of metal disulfides nanoparticles encapsulated by amorphous carbon composites as high-performance electrode materials for lithium storage
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Facile synthesis of metal disulfides nanoparticles encapsulated by amorphous carbon composites as high-performance electrode materials for lithium storage

机译:通过无定形碳复合材料包封金属二硫化物纳米粒子作为锂储存的高性能电极材料

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摘要

With the purpose to settle the aggregation and conductivity issues of the active materials, the metal disulfides (MS2, M?=?Fe, Co) nanoparticles in-situ encapsulated by amorphous carbon layers (MS2@C) have been synthesized by directly vulcanizing the iron (III) acetylacetonate or cobalt (II) acetylacetonate, which are both the metal source and carbon source, using sulfur power as S source and dispersant by a facile one-step heating method. A structure that MS2nanoparticles are well wrapped by amorphous carbon layer uniformly coated by many ultra-small MS2nanoparticles is obtained. Benefiting from the unique multidimensional structure that integrates the advantages of low-dimensional nanostructures and high-dimensional bulk structure, FeS2@C and CoS2@C composites evaluated as electrode materials for lithium storage exhibit superior electrochemical performance. After 100 charge-discharge cycles, this novel FeS2@C architecture delivers a reversible capacity of 829?mAh g?1at 100?mA?g?1. Moreover, a high specific capacity of 480?mAh g?1for FeS2@C at 1000?mA?g?1after 500 cycles is obtained. As for CoS2@C composite, a high specific capacity of 481?mAh g?1at 500?mA?g?1after 300 cycles is still displayed. This remarkable cycling property and superior rate capability demonstrate the potential applications for next-generation lithium-ion batteries.
机译:目的是解决活性材料的聚集和电导问题,通过直接硫化,已经合成了由非晶碳层(MS2 -C)封装的金属二硫化物(MS2,M-=ΔF,CO)纳米颗粒已经通过直接硫化而合成铁(III)乙酰丙酮或钴(II)乙酰丙酮(II),其是金属源和碳源,使用硫功率为S光源和分散剂,通过易于一步的一步加热方法。获得MS2NANOPARTILELES通过许多超小MS2NANOMATILLY均匀涂覆的非晶碳层覆盖的结构。从独特的多维结构受益于整合低维纳米结构和高尺寸散装结构的优点,FES2 @ C和COS2 @ C复合材料评价为锂储存的电极材料表现出卓越的电化学性能。在100次充电 - 放电循环之后,这种新颖的FES2 @ C架构提供了829的可逆容量为829?MAH G?1AT 100?MA?G?1。此外,高比容量为480?Mah G?1对于FES2 @ C以1000?mA?G?1 500个循环。至于COS2 @ C复合材料,高特定容量为481?MAH G?1AT 500?MA?G?仍然显示300个周期。这种显着的循环性能和卓越的速率能力证明了下一代锂离子电池的潜在应用。

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