Capacitive Deionization for Selective Separation and Resource Recovery of Heavy Metal

The remediation of heavy metal pollution urgently requires efficient, highly selective, and sustainable technologies. Capacitive deionization (CDI) is a promising technology for the targeted removal and resource recovery of heavy metals. This paper reviews recent advances in this field, explaining the synergistic mechanisms between the electric double layer and Faradaic reactions, as well as how physical sieving, chemical recognition, and operational parameters enhance selective capture. Energy consumption, stability, and selectivity of various CDI configurations are compared. Removal strategies are discussed based on the oxidation states and chemical properties of typical heavy metals. Finally, the key challenges in transiting from laboratory research to engineering applications and future development directions are identified. The aim is to establish knowledge spanning mechanisms and applications to facilitate the development of highly efficient and selective heavy metal recovery systems.

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Publication Details

Journal
Chemistry - A European Journal
Published
2026-09-29
DOI
https://doi.org/10.1002/chem.71738
Primary Topic
Membrane-based Ion Separation Techniques
Type
article
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article

Capacitive Deionization for Selective Separation and Resource Recovery of Heavy Metal

F S Pan, Dongbao Song, Houjie Gong, Shizhan Feng et al.
Chemistry - A European Journal
Membrane-based Ion Separation Techniques
article

Capacitive Deionization for Selective Separation and Resource Recovery of Heavy Metal

F S Pan, Dongbao Song, Houjie Gong, Shizhan Feng, Jie Ma, Abuduaini Abulimiti, Yang Xue, Hanze Liu, Junfeng Li
article en

Abstract

The remediation of heavy metal pollution urgently requires efficient, highly selective, and sustainable technologies. Capacitive deionization (CDI) is a promising technology for the targeted removal and resource recovery of heavy metals. This paper reviews recent advances in this field, explaining the synergistic mechanisms between the electric double layer and Faradaic reactions, as well as how physical sieving, chemical recognition, and operational parameters enhance selective capture. Energy consumption, stability, and selectivity of various CDI configurations are compared. Removal strategies are discussed based on the oxidation states and chemical properties of typical heavy metals. Finally, the key challenges in transiting from laboratory research to engineering applications and future development directions are identified. The aim is to establish knowledge spanning mechanisms and applications to facilitate the development of highly efficient and selective heavy metal recovery systems.

Chemistry - A European Journal
Shihezi University (CN), State Key Laboratory of Pollution Control and Resource Reuse (CN)
Responsible consumption and production
Openalex Percentile: Top 22%
Membrane-based Ion Separation Techniques
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Capacitive Deionization for Selective Separation and Resource Recovery of Heavy Metal — F S Pan, Dongbao Song, et al. · Chemistry - A European Journal (2026) | TGRS Research Map | TGRS