Journal article
Suppression of Halide Ion Crossover in Zn–Halide Batteries by 2D MXene Membranes
ACS applied materials & interfaces, v 17(35), pp 49400-49408
03 Sep 2025
PMID: 40810370
Abstract
A major challenge in Zn–halide batteries is rapid self-discharge caused by migration of halide ions to metallic Zn. Conventional Nafion or polyolefin separators, are commonly used to mitigate anion crossover, but they are costly and often ineffective in blocking corrosive halides. Recently, Ti3C2T x (MXene) has emerged as a promising alternative due to its negatively charged surface and stability in halide electrolytes. This study demonstrates the effectiveness of MXene membranes in reducing halide ion (Cl–, Br–, and I–) crossover and provides insights into the ion transport mechanism through systematic electrochemical studies, electrolyte property measurements, and ab initio molecular dynamics simulations. MXene membranes exhibit significantly improved anion selectivity compared to Nafion, making them an attractive candidate for halide-based battery applications. Their potential to enhance battery performance and stability offers a compelling solution for addressing self-discharge in Zn–halide batteries.
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Details
- Title
- Suppression of Halide Ion Crossover in Zn–Halide Batteries by 2D MXene Membranes
- Creators
- Atanu Roy - Hebrew University of JerusalemArup Chakraborty - University of OxfordGeetha Valurouthu - Drexel UniversityYuan Zhang - Nanomaterials Research (United States)Gil Bergman - Bar-Ilan UniversityNetanel Shpigel - Ariel UniversityM. Saiful Islam - University of OxfordDaniel Mandler (Corresponding Author) - Hebrew University of JerusalemYury Gogotsi - University of Oxford
- Publication Details
- ACS applied materials & interfaces, v 17(35), pp 49400-49408
- Publisher
- American Chemical Society
- Number of pages
- 9
- Resource Type
- Journal article
- Language
- English
- Academic Unit
- Materials Science and Engineering; A.J. Drexel Nanomaterials Institute
- Web of Science ID
- WOS:001551473200001
- Scopus ID
- 2-s2.0-105015805640
- Other Identifier
- 991022197326604721