Rechargeable Seawater Battery Coupled to Solar Seawater Desalination With a Mutual Enhancement Effect

ABSTRACT Rechargeable seawater battery (RSWB) is a promising candidate for low‐cost energy storage while solar seawater desalination (SSD) can produce clean water from seawater, yet no attempts have been made to integrate them, preferably with a mutual enhancement effect. In this study, we report an ε‐MnO 2 material with bifunctions of ion storage for RSWB and photothermal effect for SSD. The integration of RSWB and SSD leads to a mutual enhancement effect, in sharp contrast to traditional integrations. The ε‐MnO 2 displays a high specific capacity of 265 mAh g −1 for RSWB. When coupled with SSD, the specific capacity obviously increases, and meanwhile the seawater evaporation rate also increases substantially during the charge/discharge process. The mutual enhancement effect is attributed to the temperature increase in cathode caused by the photothermal effect of ε‐MnO 2 and the weakened hydrogen‐bonding interaction arising from the charge/discharge process. This work would provide new perspectives on energy storage and clean water production.

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Publication Details

Journal
Advanced Materials
Published
2026-09-29
DOI
https://doi.org/10.1002/adma.75173
Primary Topic
Solar-Powered Water Purification Methods
Type
article
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Rechargeable Seawater Battery Coupled to Solar Seawater Desalination With a Mutual Enhancement Effect

Wei Wen, Wei Huang, Jin‐Ming Wu, Minhua Cao et al.
Advanced Materials
Solar-Powered Water Purification Methods
article

Rechargeable Seawater Battery Coupled to Solar Seawater Desalination With a Mutual Enhancement Effect

Wei Wen, Wei Huang, Jin‐Ming Wu, Minhua Cao, Jialong Wu, Yijun Shen, Yongshuo Zheng, Chao Geng, Xinyuan Zhao
article en

Abstract

ABSTRACT Rechargeable seawater battery (RSWB) is a promising candidate for low‐cost energy storage while solar seawater desalination (SSD) can produce clean water from seawater, yet no attempts have been made to integrate them, preferably with a mutual enhancement effect. In this study, we report an ε‐MnO 2 material with bifunctions of ion storage for RSWB and photothermal effect for SSD. The integration of RSWB and SSD leads to a mutual enhancement effect, in sharp contrast to traditional integrations. The ε‐MnO 2 displays a high specific capacity of 265 mAh g −1 for RSWB. When coupled with SSD, the specific capacity obviously increases, and meanwhile the seawater evaporation rate also increases substantially during the charge/discharge process. The mutual enhancement effect is attributed to the temperature increase in cathode caused by the photothermal effect of ε‐MnO 2 and the weakened hydrogen‐bonding interaction arising from the charge/discharge process. This work would provide new perspectives on energy storage and clean water production.

Advanced Materials
University of Macau (MO), Hainan University (CN), Zhejiang University (CN)
Openalex Percentile: Top 31%
Solar-Powered Water Purification Methods
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Rechargeable Seawater Battery Coupled to Solar Seawater Desalination With a Mutual Enhancement Effect — Wei Wen, Wei Huang, et al. · Advanced Materials (2026) | TGRS Research Map | TGRS