Cation Vacancy Modified Bismuth Selenide Nanosheets Toward Durable and Ultrafast Sodium-Ion Batteries

26 Pages Posted: 20 Jan 2025

See all articles by Xinliang Huang

Xinliang Huang

Qingdao University

Xiaofan Tian

Qingdao University

Yu Chen

Qingdao University

Yamei Liu

Qingdao University

Lu Wang

Qingdao University

jie zheng

Qingdao University

Jiang Cheng

Chongqing University of Arts and Sciences

Xin Ning

Qingdao University

Xiaochuan Ren

Qingdao University

Abstract

High-performance metal chalcogenide anodes based on conversion and alloy reaction are promising for the next generation of sodium-ion batteries (SIBs) due to their high theoretical capacity. However, the intrinsic limitations of metal chalcogenides, including inadequate electrical conductivity and suboptimal ion diffusion kinetics, impede high-rate performance and large-scale applicability. Herein, a two-dimensional ultrathin Bi2Se3 nanosheet with cation vacancies (denoted as DBS) is developed as anode for SIBs that exhibiting high capacity and superior rate performance. The electrical conductivity of DBS is enhanced by the contribution of surface topological states and the regulation of electronic structure due to cation vacancies. Furthermore, the modified crystal structure demonstrates improved ion transport capabilities, elevated Na+ adsorption energy, and a greater number of adsorption sites, as substantiated by density functional theory (DFT) calculations. Consequently, the DBS electrode exhibits reduced polarization potential, fast capacitive charge storage and a more comprehensive conversion-alloy reaction, thereby achieving a high specific capacity (528 mA h g−1 at 0.2 A g−1), large rate performance (383 mA h g−1 at 10 A g−1), and long cycling stability. This superior performance enhances the appealing electrochemical properties of both coin and pouch-type DBS//Na3V2(PO4)3@C full cells.

Keywords: Bismuth selenide, Cation vacancy, Sodium ion battery, Anode, Fast charge

Suggested Citation

Huang, Xinliang and Tian, Xiaofan and Chen, Yu and Liu, Yamei and Wang, Lu and zheng, jie and Cheng, Jiang and Ning, Xin and Ren, Xiaochuan, Cation Vacancy Modified Bismuth Selenide Nanosheets Toward Durable and Ultrafast Sodium-Ion Batteries. Available at SSRN: https://ssrn.com/abstract=5104131 or http://dx.doi.org/10.2139/ssrn.5104131

Xinliang Huang

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Xiaofan Tian

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Yu Chen

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Yamei Liu

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Lu Wang

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Jie Zheng

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Jiang Cheng

Chongqing University of Arts and Sciences ( email )

Chongqing
China

Xin Ning

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Xiaochuan Ren (Contact Author)

Qingdao University ( email )

No. 308 Ning Xia Road
Qingdao, 266071
China

Do you have a job opening that you would like to promote on SSRN?

Paper statistics

Downloads
22
Abstract Views
84
PlumX Metrics