Bulin Chaoke, Zheng Rongxiang, Guo Ting
College of Material Science and Engineering, Inner Mongolia University of Science and Technology, Baotou 014010, China; Inner Mongolia Key Laboratory of Advanced Ceramic Material and Devices, Baotou 014010, China; Key Laboratory of Green Extraction & Efficient Utilization of Light Rare-Earth Resources (Inner Mongolia University of Science and Technology), Ministry of Education, Baotou 014010, China.
College of Material Science and Engineering, Inner Mongolia University of Science and Technology, Baotou 014010, China.
Int J Biol Macromol. 2024 Dec;282(Pt 4):136845. doi: 10.1016/j.ijbiomac.2024.136845. Epub 2024 Oct 28.
Reclamation of rare earths from secondary sources is in line with both environmental remediation and sustainable utilization of rare earth resources. Herein, neodymium Nd(III) imprinted polyethylene glycol-polyvinyl alcohol hybrid membrane (IIP-CS-PEG-PVA) with high selectivity, increased specific surface area, acid stability and easy recyclability was constructed using chitosan (CS) as functional monomer, polyethylene glycol (PEG) as porogenic agent, polyvinyl alcohol (PVA) as filmogen, and Nd(III) as template ion. Batch adsorption indicates, adsorption of IIP-CS-PEG-PVA for Nd(III) is induced by electrostatic interaction, reaching rapid equilibration in 35 min at pH = 5. The maximum adsorption capacity determined by Langmuir fitting is 221.73 mg·g. Owing to its ion imprinting sites, IIP-CS-PEG-PVA exhibits selectivity coefficient 3.47, 3.72, 9.71, 8.33 towards Nd(III) for binary solution Nd/Eu, Nd/Dy, Nd/Cu, Nd/Cr, respectively. Being as a membrane, IIP-CS-PEG-PVA can be easily recovered for cyclic adsorption, whereby retaining adsorption quantity 73.95 mg·g on Nd(III) in five consecutive cycles. Compared with other adsorbents, IIP-CS-PEG-PVA exhibits fast equilibrium, high adsorption capacity and selectivity towards Nd(III). For adsorption mechanism, versatile functional groups -OH, -NH, -C(=O)NH-, C-O-C in IIP-CS-PEG-PVA provides heterogeneous affinity for Nd(III), giving rise to chemical adsorption. This work provides a novel strategy for fabricating bio adsorbent towards selective recovery of Nd(III).
从二次资源中回收稀土既符合环境修复的要求,也符合稀土资源的可持续利用。在此,以壳聚糖(CS)为功能单体、聚乙二醇(PEG)为致孔剂、聚乙烯醇(PVA)为成膜剂、Nd(III)为模板离子,构建了具有高选择性、比表面积增大、酸稳定性好且易于回收利用的钕Nd(III)印迹聚乙二醇-聚乙烯醇复合膜(IIP-CS-PEG-PVA)。批量吸附表明,IIP-CS-PEG-PVA对Nd(III)的吸附是由静电相互作用引起的,在pH = 5时35分钟内达到快速平衡。通过朗缪尔拟合确定的最大吸附容量为221.73 mg·g。由于其离子印迹位点,IIP-CS-PEG-PVA对二元溶液Nd/Eu、Nd/Dy、Nd/Cu、Nd/Cr中的Nd(III)的选择性系数分别为3.47、3.72、9.71、8.33。作为一种膜,IIP-CS-PEG-PVA可以很容易地回收用于循环吸附,在连续五个循环中对Nd(III)的吸附量保持在73.95 mg·g。与其他吸附剂相比,IIP-CS-PEG-PVA对Nd(III)表现出快速平衡、高吸附容量和选择性。对于吸附机制,IIP-CS-PEG-PVA中的多功能团-OH、-NH、-C(=O)NH-、C-O-C对Nd(III)提供了非均相亲和力,从而产生化学吸附。这项工作为制备用于选择性回收Nd(III)的生物吸附剂提供了一种新策略。