Synthesis and characterization of imprinted polymers for rare earth recovery

Miriam Martins Alho, Agustín Anghileri, V. Pozzoli
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Abstract

This study aims to discover a novel material suitable for rare earth recycling. We explore the efficacy of a physically imprinted copolymer in sequestering cationic lanthanum from aqueous solutions. The copolymerization process with MMA, incorporating lanthanum complexes with an acrylic derivative of neocuproine, facilitates physical crosslinking. Our investigations demonstrate the copolymer's reversible lanthanum binding capability in both batch and column experiments. At laboratory scale, the copolymer achieves an impressive lanthanum retention of approximately 760 mg/g at an initial concentration (C0) of 22 g/L in batch experiments. Regeneration of the material is achieved using HNO3 (c), inducing alterations in its physical state. Nonetheless, subsequent washing with water preserves the copolymer's interaction capacity with lanthanum. Current efforts focus on conserving the material's physical integrity during regeneration to enable in situ regeneration in column experiments.
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用于稀土回收的压印聚合物的合成与表征
本研究旨在发现一种适用于稀土回收的新型材料。我们探索了物理印迹共聚物从水溶液中封存阳离子镧的功效。在与 MMA 的共聚过程中,镧络合物与新乌头碱的丙烯酸衍生物结合在一起,促进了物理交联。我们的研究表明,这种共聚物在批量和柱实验中都具有可逆的镧结合能力。在实验室规模的批量实验中,当初始浓度(C0)为 22 克/升时,共聚物的镧留存率高达约 760 毫克/克。使用 HNO3(c)可实现材料再生,从而改变其物理状态。不过,随后的水洗可以保持共聚物与镧的相互作用能力。目前的工作重点是在再生过程中保持材料的物理完整性,以便在柱实验中实现原位再生。
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