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April 15, 2026Journal of the Chinese Chemical Society0 citations

Preparation and performance evaluation of a high‐efficiency green solid‐phase extraction sorbent functionalized with quaternary ammonium groups

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SFShengwei FangRZRenfeng ZhouCWChao Wang

Key Points

  • The aim is to develop a highly efficient sorbent for lithium recovery from salt lake brines while minimizing environmental impact.
  • Synthesize nanosized SiO2 via the Stöber method.
  • Functionalize SiO2 with vinyl groups using VTES and KH570.
  • Conduct surface-initiated polymerization with MPC to create polymer-grafted sorbents.
  • Investigate the structure-property relationships and performance of the sorbents.
  • SiO2–KH570–MPC showed enhanced lithium adsorption capacity of 4.4163 mg·L−1.
  • Achieved Mg/Li selectivity of 92.0114, higher than SiO2–VTES–MPC.
  • Sorbent retained excellent performance after acid elution with a total separation factor of 448.1323.

Abstract

Abstract Solvent extraction is commonly used for lithium recovery from salt lake brines; however, organic phase loss and high acid consumption during stripping severely limit its sustainable application. In this study, nanosized SiO 2 was synthesized via the Stöber method and functionalized with vinyl groups using vinyltriethoxysilane (VTES) and γ‐(methacryloyloxy)propyltrimethoxysilane (KH570). Subsequent surface‐initiated polymerization with 2‐methacryloyloxyethyl phosphorylcholine (MPC) afforded two polymer‐grafted inorganic–organic hybrid sorbents bearing P=O moieties and quaternary ammonium groups, denoted as SiO 2 –VTES–MPC and SiO 2 –KH570–MPC. The structure–property relationship of the two sorbents was systematically investigated. SiO 2 –KH570–MPC exhibited significantly enhanced lithium adsorption and Mg/Li selectivity compared with SiO 2 –VTES–MPC, which was attributed to the higher grafting efficiency and more accessible functional groups. At an MPC‐to‐KH570–SiO 2 mass ratio of 2, the maximum lithium adsorption capacity reached 4.4163 mg·L −1 , with an Mg/Li selectivity of 92.0114. After acid elution, the sorbent retained excellent separation performance, achieving a total separation factor of 448.1323. The prepared polymer‐functionalized solid‐phase extraction sorbent combines high selectivity, low acid demand, fast stripping kinetics, and good acid‐elution stability, demonstrating promising potential for sustainable lithium recovery and advanced separation applications.

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Cite This Study

Fang et al. (2026) studied this question.

synapsesocial.com/papers/69df2c50e4eeef8a2a6b160ehttps://doi.org/10.1002/jccs.70177
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