Revealing the Role of Ion Transport Properties through Ion-Exchange Membranes for Aqueous Zinc-Ion Battery

Abstract The separator material is a critical component that governs the cycling performance of aqueous zinc-ion batteries (AZIBs); however, how its ion transport properties dictate specific electrochemical behaviors remains poorly understood. Here, we investigated the relationship between ion transport properties and AZIB performance using Zn2+-substituted Nafion® (Zn-Nafion®) membranes as model ion-exchange membranes. By separately characterizing electric-field-driven ion migration and concentration-gradient-driven diffusion, we identified that rate capability is primarily influenced by ion conductivity, while long-term stability is governed by ion permeability, as further confirmed by numerical simulation. Guided by this principle, we chemically activated a Zn-Nafion® membrane optimized for both parameters, which demonstrated exceptional cycling stability even under high-rate operation (5.0 A/g). These findings clarify the distinct roles of ion transport in AZIBs and offer a rational strategy for designing advanced membrane materials.

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Publication Details

Journal
ACS Applied Polymer Materials
Published
2026-09-18
DOI
https://doi.org/10.1021/acsapm.6c02813
Primary Topic
Advanced battery technologies research
Type
article
Field-Weighted Citation Impact
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article

Revealing the Role of Ion Transport Properties through Ion-Exchange Membranes for Aqueous Zinc-Ion Battery

Hyo Won Kim, Perumal Viswanathan, Hoang Thai Bao Ngo, Trung Tuyen Bui et al.
ACS Applied Polymer Materials
Advanced battery technologies research
article

Revealing the Role of Ion Transport Properties through Ion-Exchange Membranes for Aqueous Zinc-Ion Battery

Hyo Won Kim, Perumal Viswanathan, Hoang Thai Bao Ngo, Trung Tuyen Bui, Yu Jin Jo, Juhyun Song, Tae Hoon Lee, Seong-Wook Heo
article en

Abstract

Abstract The separator material is a critical component that governs the cycling performance of aqueous zinc-ion batteries (AZIBs); however, how its ion transport properties dictate specific electrochemical behaviors remains poorly understood. Here, we investigated the relationship between ion transport properties and AZIB performance using Zn2+-substituted Nafion® (Zn-Nafion®) membranes as model ion-exchange membranes. By separately characterizing electric-field-driven ion migration and concentration-gradient-driven diffusion, we identified that rate capability is primarily influenced by ion conductivity, while long-term stability is governed by ion permeability, as further confirmed by numerical simulation. Guided by this principle, we chemically activated a Zn-Nafion® membrane optimized for both parameters, which demonstrated exceptional cycling stability even under high-rate operation (5.0 A/g). These findings clarify the distinct roles of ion transport in AZIBs and offer a rational strategy for designing advanced membrane materials.

ACS Applied Polymer Materials
Korea Institute of Science and Technology (KR), Sungkyunkwan University (KR)
Openalex Percentile: Top 20%
Advanced battery technologies research
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Revealing the Role of Ion Transport Properties through Ion-Exchange Membranes for Aqueous Zinc-Ion Battery — Hyo Won Kim, Perumal Viswanathan, et al. · ACS Applied Polymer Materials (2026) | TGRS Research Map | TGRS