Issue 2, 2025

Halogen-bond chemistry-rectified hypervalent tellurium redox kinetics towards high-energy Zn batteries

Abstract

Hypervalent Te redox (Te0/Te4+) in ionic liquid electrolytes (ILEs) is promising for energetic Zn batteries. However, the energy contribution of Te0/Te4+ is only one-third of the total redox-amphoteric conversion, so the contribution should be maximized for energy upgradation. The underlying kinetics-limited factor is vital but usually overlooked in previous explorations. Herein, we unlock a halogen-bond chemistry-rectified Te0/Te4+ redox with an almost maximized contribution for 700 W h kgTe−1 Zn batteries. The Zn–X bond barriers in ZnX42− (X = Cl, Br) species from ILEs play crucial roles in rectifying the Te0/Te4+ redox kinetics, especially in localized concentrated ILEs, resulting in sharply different redox conversion depths. When ZnBr42− with a weak Zn–Br bond (34.96 kcal mol−1) is used as the activator, the Te0/Te4+ redox contribution can be maximized to ∼90.0% over 5000 cycles at 5 A g−1, 1.8-fold higher than that with the ZnCl42− activator via the strong Zn–Cl bond (102.81 kcal mol−1), and surpassing those in most aqueous systems (ca. 33.0%). This work decodes the halogen-bond chemistry-rectified kinetics to maximize the hypervalent redox contribution towards high-energy Zn batteries, which could apply to other chalcogen conversion batteries.

Graphical abstract: Halogen-bond chemistry-rectified hypervalent tellurium redox kinetics towards high-energy Zn batteries

Supplementary files

Article information

Article type
Paper
Submitted
17 Oct 2024
Accepted
22 Nov 2024
First published
03 Dec 2024

Energy Environ. Sci., 2025,18, 807-817

Halogen-bond chemistry-rectified hypervalent tellurium redox kinetics towards high-energy Zn batteries

J. Qi, Y. Tang, Y. Wei, G. Liu, J. Yan, Z. Feng, Z. Han, M. Ye, W. Du, Q. Yang, Y. Zhang, Z. Wen, X. Liu and C. C. Li, Energy Environ. Sci., 2025, 18, 807 DOI: 10.1039/D4EE04806G

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