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January 20, 2026Journal of Chemical Technology & Biotechnology0 citationsOpen Access

Solar‐driven high specific surface network membrane for efficient lithium recovery

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ZZZizheng ZhuYJYuhui JiangZWZhuoqun Wang

Key Points

  • The research aims to improve lithium recovery efficiency using a solar-driven adsorption membrane.
  • Developed a network structure adsorption membrane made of H4Mn5O12/MnO2 nanowires.
  • Tested the photothermal conversion capability of the membrane under 1.0 sun illumination.
  • Measured lithium adsorption capacity and selectivity in varying conditions.
  • Achieved a lithium adsorption capacity of 16.07 mg/g under 1.0 sun illumination.
  • Improved lithium adsorption by 5.11 mg/g compared to dark conditions.
  • Demonstrated high selectivity and good cycling performance of the membrane.

Abstract

Abstract BACKGROUND Lithium‐ion sieve adsorption is considered the most promising method for lithium recovery from salt lakes, although efficiency limitations restrict its industrial application. RESULTS In this work, the network structure adsorption membrane with excellent photothermal conversion capability was developed for efficient lithium extraction from salt lakes. The designed network structure of H 4 Mn 5 O 12 /MnO 2 nanowires membrane ensures sufficient contact between the solution and Lithium‐ion sieve adsorption sites, while its outstanding photothermal properties further enhance Li + adsorption. Subsequent experiments demonstrated that the H 4 Mn 5 O 12 /MnO 2 nanowires membrane surface temperature reaches 66 °C under 1.0 sun illumination. Adsorption kinetic data revealed a lithium adsorption capacity of 16.07 mg/g under 1.0 sun illumination, representing a 5.11 mg/g improvement compared to dark conditions. Furthermore, the H 4 Mn 5 O 12 /MnO 2 nanowires membrane exhibited excellent adsorption selectivity and cycling performance. CONCLUSION Therefore, this work provides a promising strategy for developing high‐performance lithium‐ion sieve composites to meet the growing demand for lithium recovery from brine. © 2026 Society of Chemical Industry (SCI).

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Cite This Study

Zhu et al. (2026) studied this question.

synapsesocial.com/papers/696f1a849e64f732b51eecf3https://doi.org/10.1002/jctb.70135
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