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多孔NaV(PO)/C复合正极中的成孔机制及钠离子存储性能

Pore-forming mechanisms and sodium-ion-storage performances in a porous NaV(PO)/C composite cathode.

作者信息

Wang Zhaoyang, Han Jiaxuan, Wang Dong, Liu Lingyang, Shi Wenjing, Xiong Fangyu, Tao Haizheng

机构信息

Shandong Provincial Key Laboratory of Chemical Energy Storage and Novel Cell Technology, School of Chemistry and Chemical Engineering, Liaocheng University, Liaocheng, 252059, P.R. China.

Department of Physics, City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong, China.

出版信息

Dalton Trans. 2023 Apr 11;52(15):4708-4716. doi: 10.1039/d3dt00365e.

Abstract

NaV(PO) (NVP) is regarded as one of the most promising cathode materials for sodium-ion batteries (SIBs). However, it suffers from a dense bulk structure and low intrinsic electronic conductivity, which lead to limited electrochemical performances. Herein, we propose a surfactant-assisted molding strategy to regulate the pore-forming process in NVP/C composite cathode materials. More precisely, the forming process of the pores in NVP could be easily controlled by utilizing the huge difference in critical micelle concentration of a surfactant (cetyltrimethylammonium bromide, CTAB) in water and ethanol. By reasonably modulating the ratio of water and ethanol in the solution, the as-synthesized NVP/C sample exhibited a three-dimensional interconnected structure with hierarchical micro/meso/macro-pores. Benefiting from these hierarchical porous structures in NVP/C, the structural stability, contact surface with the electrolyte, and electronic/ionic conductivity were improved simultaneously; whereby the optimized porous NVP/C sample exhibited an excellent high-rate performance (61.3 mA h g at 10 C) and superior cycling stability (90.2% capacity retention after 500 cycles at 10 C).

摘要

NaV(PO)(NVP)被认为是钠离子电池(SIBs)最有前景的正极材料之一。然而,它存在致密的本体结构和较低的本征电子电导率,这导致其电化学性能有限。在此,我们提出一种表面活性剂辅助成型策略来调控NVP/C复合正极材料中的成孔过程。更确切地说,通过利用表面活性剂(十六烷基三甲基溴化铵,CTAB)在水和乙醇中的临界胶束浓度的巨大差异,可以轻松控制NVP中孔的形成过程。通过合理调节溶液中水和乙醇的比例,合成的NVP/C样品呈现出具有分级微/介/大孔的三维互连结构。受益于NVP/C中的这些分级多孔结构,结构稳定性、与电解质的接触表面以及电子/离子电导率同时得到改善;由此,优化后的多孔NVP/C样品表现出优异的高倍率性能(10 C下为61.3 mA h g)和卓越的循环稳定性(10 C下500次循环后容量保持率为90.2%)。

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