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首页> 外文期刊>Biochemical Engineering Journal >Fabrication and characterization of porous cellulose beads with high strength and specific surface area via preliminary chemical cross-linking reaction for protein separation
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Fabrication and characterization of porous cellulose beads with high strength and specific surface area via preliminary chemical cross-linking reaction for protein separation

机译:通过初步化学交联反应对高强度和比表面积的制备和表征多孔纤维素珠粒,通过初始化学交联反应进行蛋白质分离

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摘要

Porous cellulose beads are widely used in the adsorption field, in which enhancing the structure stability and enlarging the specific surface area are the ways to improve the adsorption efficiency. Here, a preliminary chemical cross-linking (PCC) strategy is explored to construct the tough and highly porous cellulose beads as high efficient adsorbent. Especially, the customized cellulose solution is preliminarily mixed with a cross-linking agent for emulsification and followed by cellulose regeneration. The entrapped cross-linking agent creates the inner covalent linkages between the neighboring long cellulose chains, which accounts for strong mechanical strength of cellulose framework. Meanwhile, the entrapped covalent bonds disrupt the normal growth of cellulose crystalline and lead to more amorphousness, which conduces to high specific surface area. Finally, the proposed cellulose beads, after being modified by DEAE, were evaluated for protein adsorption. As a result, the obtained porous cellulose beads exhibits high adsorption capacities (BSA: 204.58 mg g(-1); BHb: 144.78 mg g(-1)) and excellent structure stability. Taken together these properties, the porous cellulose beads developed here enjoy great potential for separation application.
机译:多孔纤维素珠粒广泛用于吸附场,其中增强结构稳定性并扩大特定表面积是提高吸附效率的方式。这里,探讨了初步的化学交联(PCC)策略以构建坚固且高度多孔的纤维素珠,如高效吸附剂。特别是,将定制的纤维素溶液预先与乳化的交联剂混合,然后是纤维素再生。捕获的交联剂在相邻的长纤维素链之间产生内部共价键,这考虑了纤维素框架的强机械强度。同时,捕获的共价键破坏了纤维素结晶的正常生长,并导致更多的无定性,其延伸到高比表面积。最后,评估了通过DEAE改性后的提出的纤维素珠被评估蛋白质吸附。结果,所获得的多孔纤维素珠子表现出高吸附能力(BSA:204.58mg(-1); BHB:144.78mg(-1))和优异的结构稳定性。在这里开发的多孔纤维素珠子占据了这些性质,享有分离施用的巨大潜力。

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