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配位聚合物的表面改性,用于构建CoP/N、P共掺杂碳纳米线以实现高性能锂存储。

Surface modification of coordination polymers to enable the construction of CoP/N,P-codoped carbon nanowires towards high-performance lithium storage.

作者信息

Li Huanhuan, Zhu Yuqiang, Zhao Kangjia, Fu Qi, Wang Kui, Wang Yaping, Wang Nan, Lv Xiaoxin, Jiang Haobin, Chen Long

机构信息

Automotive Engineering Research Institute, Jiangsu University, 301 Xuefu Road, Zhenjiang 212013, PR China.

School of Material Science & Engineering, Jiangsu University, Zhenjiang 212013, PR China.

出版信息

J Colloid Interface Sci. 2020 Apr 1;565:503-512. doi: 10.1016/j.jcis.2020.01.037. Epub 2020 Jan 14.

Abstract

A one-dimensional hybrid with N,P co-doped carbon nanowires threaded CoP nanoparticles is rationally fabricated by employing surface modified coordination polymers as a precursor. Ultrasmall CoP nanoparticlesare well encapsulated in N,P co-doped carbon nanowires, which can effectively buffer the volume expansion of active CoP and facilitate fast lithium-ion/electron transfer during charge/discharge processes. Moreover, N,P co-doped carbon with high defect density and graphitic-N content are obtained, which facilitates high lithium storage capacity and fast electron transfer. As a result, attractive lithium storage properties are gained by employing this unique architecture as an anode material for lithium-ion batteries, including high reversible charge/discharge capacities, good rate capability, and excellent long-term cycling stability. Kinetic investigation shows that the fast lithium ion uptake/release is related to the remarkable capacitive contribution. This work may offer an effective way for design well-defined transition metal phosphide-based anodes for advanced lithium-ion batteries.

摘要

通过使用表面改性的配位聚合物作为前驱体,合理制备了一种一维的、具有N、P共掺杂碳纳米线包覆CoP纳米颗粒的复合材料。超小的CoP纳米颗粒被良好地封装在N、P共掺杂的碳纳米线中,这可以有效地缓冲活性CoP的体积膨胀,并在充电/放电过程中促进快速的锂离子/电子传输。此外,还获得了具有高缺陷密度和石墨氮含量的N、P共掺杂碳,这有利于高的锂存储容量和快速的电子传输。结果,通过采用这种独特的结构作为锂离子电池的负极材料,获得了吸引人的锂存储性能,包括高的可逆充/放电容量、良好的倍率性能和优异的长期循环稳定性。动力学研究表明,快速的锂离子吸收/释放与显著的电容贡献有关。这项工作可能为设计用于先进锂离子电池的明确的过渡金属磷化物基负极提供一种有效的方法。

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