Bimetallic ZnSe–SnSe2 heterostructure functionalized separator for high-rate Li–S batteries

Abstract

Lithium polysulfide (LiPS) shuttling is still the core issue in advancing Li–S battery technologies towards high-power and fast-charging commercialized application. In this work, we demonstrate a confined catalysis of LiPSs by a functionalized separator to suppress shuttling and to improve the high rate capability and cycling stability. An oxygenated carbon nitride (OCN)-supported ZnSe–SnSe2 heterostructure (ZnSe–SnSe2@OCN) was designed for the functionalized separator. The ZnSe–SnSe2@OCN functionalized separator gives a high specific capacity of 609 mA h g−1 at 5 C, favorable cycling stability of 350 cycles at 1 C with a decay rate of 0.11% and coulombic efficiency of 98.6%. It also produces low voltage hysteresis (∼17 mV) after 600 h of cycling without significant voltage fluctuations in a Li|Li symmetric cell. The experimental evidence and density functional theory calculations reveal that the bimetallic ZnSe–SnSe2 sites regulate the density of states at the Fermi level and provide Se–Li, Zn–S and Sn–S chemical bonding interface for LiPS adsorption confinement. This work provides a viable functionalized separator solution for future high-rate Li–S batteries.

Graphical abstract: Bimetallic ZnSe–SnSe2 heterostructure functionalized separator for high-rate Li–S batteries

Supplementary files

Article information

Article type
Research Article
Submitted
01 Okt. 2024
Accepted
26 Nov. 2024
First published
28 Nov. 2024

Inorg. Chem. Front., 2025, Advance Article

Bimetallic ZnSe–SnSe2 heterostructure functionalized separator for high-rate Li–S batteries

J. Xue, D. Yang, J. Lin, Q. Zhuang, M. Jia, T. Wu, L. Ji, Y. Zhang, Z. Niu and J. Liu, Inorg. Chem. Front., 2025, Advance Article , DOI: 10.1039/D4QI02476A

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