Fast, One‐Step In Situ Synthesis of a Hierarchical Sn4+‐Doped TiNb2O7 Nanosphere as a High‐Performance Anode Material

Author:

Wang Xiaoyan12,Xu Zhuijun23,Amzil Said2,Cheng Ya‐Jun2ORCID,Lin Long1,Ji Qing24,Liang Suzhe3,Zhu Jin2,Duan Jingkuan1,Zheng Tianle23,Xia Yonggao25

Affiliation:

1. School of Materials and Chemical Engineering Ningbo University of Technology 201 Fenghua Road Ningbo, Zhejiang 315211 P. R. China

2. Ningbo Institute of Materials Technology & Engineering Chinese Academy of Sciences 1219 Zhongguan West Rd Zhenhai District, Ningbo, Zhejiang Province 315201 P. R. China

3. Lehrstuhl für Funktionelle Materialien, Physik-Department Technische Universität München James-Franck-Str. 1 85748 Garching Germany

4. Vehicle Energy and Safety Laboratory Department of Mechanical Engineering Ningbo University of Technology Ningbo 315336 P. R. China

5. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences 19 A Yuquan Rd Shijingshan District, Beijing 100049 P. R. China

Abstract

AbstractTitanium niobium oxide (TNO) exhibits great potential as a lithium‐ion battery anode due to its high capacity, minimal volume change during cycling, and safe good operation characteristic enabled from its voltage profile. However, its intrinsically low electronic and ionic conductivity hinders its potential for practical applications. This work proposes a facile coprecipitation method to address these limitations by incorporating a nano‐macro structure and in situ Sn ion doping into bulk TNO. This approach ensures homogeneous integration of TNO precursors and the Sn dopant at a molecular level within the co‐precipitation nanoparticles. Additionally, the use of low toxicity solvents facilitate scalability of the synthesis process. Excellent rate capability, high reversible capacities, and good capacity retention are achieved simultaneously due to synergistic effects of the bulk doping, which expands the crystal volume and enhances Li+ diffusion, combined with abundant surface area of the nano‐macro structures. The specific capacity of Sn‐doped TNO nanospheres remains at 180 mAh/g at a high current density of 40 C (1 C=400 mA g−1), which is nearly four times higher than that of undoped samples. Furthermore, the cyclic voltammetry analysis at various scanning rates reveals an increased Li+ diffusion rate in Sn doped titanium niobium dioxide.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Ningbo Municipality

Publisher

Wiley

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