Dear Editor, the Manuscript Entitled “Cu2+ Redox Activation and Polyselenide Stabilization Via Strong Se-C Interaction for Superior Magnesium Storage” is Submitted for Publication in Energy Storage Materials

25 Pages Posted: 5 Feb 2023

See all articles by Changliang Du

Changliang Du

Beijing Institute of Technology

Youqi Zhu

Beijing Institute of Technology

Yuexing Zhang

Beijing Institute of Technology

Hui Peng

Shandong University of Technology

Jiachen Tian

Beijing Institute of Technology

Tianyu Xia

Zhengzhou University

Lifen Yang

Beijing Institute of Technology

Xin Liu

Beijing Institute of Technology

Xilan Ma

Beijing Institute of Technology

Chuanbao Cao

Beijing Institute of Technology

Abstract

Copper selenides have been recognized as one of the most promising Mg2+ host materials due to their high electrical conductivity and unique ionic displacement mechanism, yet they suffer from low magnesium storage capacity and inferior cycling stability caused by insufficient Cu2+ conversion and inevitable polyselenide dissolution. Herein, the graphene-supported CuSe (CuSe@G) with strong Se-C interaction is prepared as the high-performance cathode material for rechargeable magnesium batteries. The strong Se-C interaction between CuSe monomers and graphene substrate can not only immobilize the Se species but also boost the electrochemical replacement reaction between Cu2+ and Mg2+. The highly dispersed CuSe nanoparticles on graphene can also accelerate Mg2+ diffusion rate at the cathode-electrolyte interfaces and further regulate the electrochemical reaction kinetics. Such “one stone for three birds” method can significantly improve the reversible capacity from 167 to 233.7 mAh g–1 at 0.1 A g–1 current density and cycling stability (63 mAh g–1 after 1000 cycles with 0.039 % capacity decay per cycle) of copper selenide cathode materials. This work presents an in-depth insight into graphene bonding strategy for fabricating superior conversion-type selenide cathodes for rechargeable magnesium batteries.

Keywords: rechargeable magnesium batteries, polyselenide stabilization, Se-C interaction, redox activation, Cathode

Suggested Citation

Du, Changliang and Zhu, Youqi and Zhang, Yuexing and Peng, Hui and Tian, Jiachen and Xia, Tianyu and Yang, Lifen and Liu, Xin and Ma, Xilan and Cao, Chuanbao, Dear Editor, the Manuscript Entitled “Cu2+ Redox Activation and Polyselenide Stabilization Via Strong Se-C Interaction for Superior Magnesium Storage” is Submitted for Publication in Energy Storage Materials. Available at SSRN: https://ssrn.com/abstract=4348317 or http://dx.doi.org/10.2139/ssrn.4348317

Changliang Du

Beijing Institute of Technology ( email )

5 South Zhongguancun street
Center for Energy and Environmental Policy Researc
Beijing, 100081
China

Youqi Zhu

Beijing Institute of Technology ( email )

5 South Zhongguancun street
Center for Energy and Environmental Policy Researc
Beijing, 100081
China

Yuexing Zhang

Beijing Institute of Technology ( email )

5 South Zhongguancun street
Center for Energy and Environmental Policy Researc
Beijing, 100081
China

Hui Peng

Shandong University of Technology ( email )

No: 88, Gongqingtuan west road
No. 88 Gongqingtuan Road
Zibo, 255012
China

Jiachen Tian

Beijing Institute of Technology ( email )

5 South Zhongguancun street
Center for Energy and Environmental Policy Researc
Beijing, 100081
China

Tianyu Xia

Zhengzhou University ( email )

100 Science Avenue
Zhengzhou, CO 450001
China

Lifen Yang

Beijing Institute of Technology ( email )

5 South Zhongguancun street
Center for Energy and Environmental Policy Researc
Beijing, 100081
China

Xin Liu

Beijing Institute of Technology ( email )

5 South Zhongguancun street
Center for Energy and Environmental Policy Researc
Beijing, 100081
China

Xilan Ma

Beijing Institute of Technology ( email )

5 South Zhongguancun street
Center for Energy and Environmental Policy Researc
Beijing, 100081
China

Chuanbao Cao (Contact Author)

Beijing Institute of Technology ( email )

5 South Zhongguancun street
Center for Energy and Environmental Policy Researc
Beijing, 100081
China

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

Paper statistics

Downloads
28
Abstract Views
331
PlumX Metrics