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氟掺杂的磷酸钛钠/碳纳米复合材料作为钠离子电池的高性能阳极

F-Doped NaTi(PO)/C Nanocomposite as a High-Performance Anode for Sodium-Ion Batteries.

作者信息

Wei Peng, Liu Yanxiang, Su Yarui, Miao Ling, Huang Yangyang, Liu Yi, Qiu Yuegang, Li Yuyu, Zhang Xiaoyu, Xu Yue, Sun Xueping, Fang Chun, Li Qing, Han Jiantao, Huang Yunhui

机构信息

School of Materials Science and Engineering , Huazhong University of Science and Technology , Wuhan , Hubei 430074 , China.

School of Optical and Electronic Information , Huazhong University of Science and Technology , Wuhan 430074 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Jan 23;11(3):3116-3124. doi: 10.1021/acsami.8b19637. Epub 2019 Jan 8.

Abstract

We are presenting a sol-gel method for building novel nanostructures made of nanosized F-doped NaTi(PO)F (NTP-F , x = 0, 0.02, 0.05, and 0.10) particles embedded in three-dimensional (3D) carbon matrices (NTP-F /C). This technique combines advantages of both zero-dimensional materials and 3D-carbon networks. Proper fluorine doping stabilizes the NTP structure and greatly enhances ion/electron transportation, leading to superhigh-rate electrochemical performance and ultralong cycle life. The composite electrode delivers high specific capacities of 121, 115, 112.2, 110.1, 107.7, 103.1, 85.8, and 62.5 mA h g at 0.2, 0.5, 1, 2, 5, 10, 20, and 30 C, respectively. It retains an unbelievable ∼70% capacity after a thousand cycles at a rate as high as 10 C. Electroanalytical results reveal that fluorine doping significantly enhances Na diffusion kinetics. Meanwhile, density functional theory calculations demonstrate F-doped NTPs' own outstanding electrochemical properties, which is due to the enhanced intrinsic ionic/electronic conductivity. The results show that anion doping is an efficient way to make high-performance NTP anodes for sodium-ion batteries.

摘要

我们展示了一种溶胶-凝胶法,用于构建由嵌入三维(3D)碳基质(NTP-F/C)中的纳米尺寸F掺杂的NaTi(PO)F (NTP-F ,x = 0、0.02、0.05和0.10)颗粒制成的新型纳米结构。该技术结合了零维材料和3D碳网络的优点。适当的氟掺杂稳定了NTP结构并极大地增强了离子/电子传输,从而导致超高倍率的电化学性能和超长的循环寿命。复合电极在0.2、0.5、1、2、5、10、20和30 C时分别提供121、115、112.2、110.1、107.7、103.1、85.8和62.5 mA h g的高比容量。在高达10 C的倍率下经过一千次循环后,它仍保留了令人难以置信的约70%的容量。电分析结果表明,氟掺杂显著增强了Na扩散动力学。同时,密度泛函理论计算证明了F掺杂的NTP自身具有出色的电化学性能,这是由于其本征离子/电子电导率增强所致。结果表明,阴离子掺杂是制备用于钠离子电池的高性能NTP负极的有效方法。

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