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Glycidyl Methacrylate Polymer Grafting on Regenerated Cellulose Membrane Surface by Atom Transfer Radical Polymerization |
GAO Ying1, WANG Junbo1, MI Yace1( ), SUN Junmin1,2( ) |
1.College of Chemical Engineering, Inner Mongolia University of Technology, Hohhot 010051, China 2.Datang International Power Generation Co, Ltd. High Aluminum Coal Resources Development and Utilization R D Center, Ordos 010300, China |
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Cite this article:
GAO Ying, WANG Junbo, MI Yace, SUN Junmin. Glycidyl Methacrylate Polymer Grafting on Regenerated Cellulose Membrane Surface by Atom Transfer Radical Polymerization. Chinese Journal of Materials Research, 2025, 39(9): 694-700.
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Abstract As an advanced technique capable of finely regulating the properties of materials, the controllable grafting technique has gradually become a research hotspot in the field of material science and technology due to its high flexibility and customization. In this study, the regenerated cellulose membrane was surface grafted with poly glycidyl methacrylate (PGMA) via controllable grafting technique by taking 2-bromoisobutyryl bromide (BIBBr) as initiator and CuBr as catalyst. The effect of several key parameters on the grafting effect were systematically investigated, including dosages of initiator BIBBr, monomer GMA and catalyst, CuBr as well as the reaction temperature. The aim is to introduce epoxy groups in a controllable manner and pave the way for downstream separation and purification. The results show that the amount of initiator BIBBr is directly related to the density of the surface grafted initiator, which can effectively control the grafting rate of GMA. By the optimized conditions, i.e., the dose of initiator BIBBr, which is 3 times of the hydroxyl equivalent, the dose of GMA 17.83 mmol, and of CuBr 0.18 mmol, while the reaction at 60 °C, the grafting reaction may result in a grafting rate up to 10.51% (mass fraction) with an epoxy value 12.63 μmol/g. This study provides an important reference for the functional design of cellulose membranes.
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Received: 15 August 2024
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Fund: National Natural Science Foundation of China(22365023);Applied Technology Research and Development Project of Jungar Qi(2023YY-03) |
Corresponding Authors:
MI Yace, Tel: 18004853459, E-mail: miyacetx@163.com; SUN Junmin, Tel: 18947196196, E-mail: fangwq_2005@163.com
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