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用于超高倍率容量和超稳定钠离子电池的微介孔钴磷硫化物(CoS/CoP/NC)纳米线

Micro-mesoporous cobalt phosphosulfide (CoS/CoP/NC) nanowires for ultrahigh rate capacity and ultrastable sodium ion battery.

作者信息

Chen Lantao, Liu Zhiting, Yang Wei, Wu Shimei, Li Yining, Zhang Yufei, Zeng Lingxing, Fan Haosen

机构信息

School of Chemistry and Chemical Engineering, Guangzhou University, Guangzhou 510006, China.

School of Chemistry and Chemical Engineering, Guangzhou University, Guangzhou 510006, China.

出版信息

J Colloid Interface Sci. 2024 Jul 15;666:416-423. doi: 10.1016/j.jcis.2024.04.044. Epub 2024 Apr 8.

Abstract

The construction of heterostructure materials has been demonstrated as the promising approach to design high-performance anode materials for sodium ion batteries (SIBs). Herein, micro-mesoporous cobalt phosphosulfide nanowires (CoS/CoP/NC) with CoS/CoP hetero-nanocrystals encapsulating into N-doped carbon frameworks were successfully synthesized via hydrothermal reaction and subsequent phosphosulfidation process. The obtained micro-mesoporous nanowires greatly improve the charge transport kinetics from the facilitation of the charge transport into the inner part of nanowire. When evaluated as SIBs anode material, the CoS/CoP/NC presents outstanding electrochemical performance and battery properties owing to the synergistic effect between CoS and CoP nanocrystals and the conductive carbon frameworks. The electrode material delivers outstanding reversible rate capacity (722.33 mAh/g at 0.1 A/g) and excellent cycle stability with 522.22 mAh/g after 570 cycles at 5.0 A/g. Besides, the Ex-situ characterizations including XRD, XPS, and EIS further revealed and demonstrated the outstanding sodium ion storage mechanism of CoS/CoP/NC electrode. These findings pave a promising way for the development of novel metal phosphosulfide anodes with unexpected performance for SIBs and other alkali ion batteries.

摘要

异质结构材料的构建已被证明是设计高性能钠离子电池(SIB)负极材料的一种很有前景的方法。在此,通过水热反应和随后的磷硫化过程,成功合成了微介孔钴磷硫化物纳米线(CoS/CoP/NC),其中CoS/CoP异质纳米晶体封装在氮掺杂碳框架中。所获得的微介孔纳米线通过促进电荷传输到纳米线内部,极大地改善了电荷传输动力学。当作为SIB负极材料进行评估时,由于CoS和CoP纳米晶体与导电碳框架之间的协同效应,CoS/CoP/NC呈现出优异的电化学性能和电池性能。该电极材料具有出色的可逆倍率容量(在0.1 A/g时为722.33 mAh/g),在5.0 A/g下循环570次后具有522.22 mAh/g的优异循环稳定性。此外,包括XRD、XPS和EIS在内的非原位表征进一步揭示并证明了CoS/CoP/NC电极出色的钠离子存储机制。这些发现为开发具有意外性能的新型金属磷硫化物负极用于SIB和其他碱离子电池铺平了一条有前景的道路。

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