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BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (2): 675-683.DOI: 10.16552/j.cnki.issn1001-1625.2025.0875

• Functional Materials • Previous Articles     Next Articles

Influence of Polyvinyl Alcohol Modification on Lithium-Magnesium Separation of Two-Dimensional Montmorillonite Channel Membrane

WANG Jierui1(), ZHAO Yunliang1,2(), WANG Zhenlei1, ZHANG Tingting1, ZHANG Xin1, LI Ying1   

  1. 1. School of Resources and Environmental Engineering,Wuhan University of Technology,Wuhan 430070,China
    2. Wuhan Clayene Technology Co. ,Ltd. ,Wuhan 430223,China
  • Received:2025-08-28 Revised:2025-10-21 Online:2026-02-20 Published:2026-03-09
  • Contact: ZHAO Yunliang

Abstract:

Lithium is a key strategic resource to support the new energy revolution, and the total amount of China’s salt lake lithium resources holds a dominant position globally. However, Chinese salt lakes commonly suffer from a high magnesium-lithium ratio, which poses a significant challenge for the efficient separation of lithium and magnesium. This study proposed the use of polyvinyl alcohol (PVA)-modified montmorillonite nanosheets. By precisely controlling the gradient amount of PVA, the channel height of montmorillonite nanosheets was regulated, enabling the highly efficient separation of lithium and magnesium. Furthermore, this work elucidated the mechanism by which PVA modulates the channel height of montmorillonite nanosheets. It is found that PVA can be connected to montmorillonite nanosheets through hydrogen bonds, and enters the montmorillonite layers through intercalation, regulating the channel height of two-dimensional montmorillonite membranes, and achieving efficient separation of lithium and magnesium ions. The separation factor of lithium and magnesium in the simulated brine of the modified membrane can reach up to 92.61, which is 20 times higher than that of the unmodified membrane. The modified membrane demonstrates excellent lithium and magnesium separation capability in brine with high salt concentrations and coexisting multiple cations. The magnesium ion rejection rate remains stable at approximately 97%, and the flux is consistently maintained at a level of approximately 30 L·m-2·h-1 after 48 h of long-term stable operation.

Key words: montmorillonite, polyvinyl alcohol, two-dimensional nanosheet, nanochannel membrane, lithium-magnesium separation

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