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一石二鸟策略,用于纤维素溶解、再生和功能化,作为用于废水净化的光催化复合膜。

A one-stone-two-birds strategy for cellulose dissolution, regeneration, and functionalization as a photocatalytic composite membrane for wastewater purification.

机构信息

College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.

College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.

出版信息

Int J Biol Macromol. 2024 Aug;274(Pt 2):133317. doi: 10.1016/j.ijbiomac.2024.133317. Epub 2024 Jun 24.

Abstract

Photocatalytic membranes integrate membrane separation and photocatalysis to deliver an efficient solution for water purification, while the top priority is to exploit simple, efficient, renewable, and low-cost photocatalytic membrane materials. We herein propose a facile one-stone-two-birds strategy to construct a multifunctional regenerated cellulose composite membrane decorated by Prussian blue analogue (ZnPBA) microspheres for wastewater purification. The hypotheses are that: 1) ZnCl not only serves as a cellulose solvent for tuning cellulose dissolution and regeneration, but also functions as a precursor for in-situ growth of spherical-like ZnPBA; 2) More homogeneous reactions including coordination and hydrogen bonding among Zn, [Fe(CN)] and cellulose chains contribute to a rapid and uniform anchoring of ZnPBA microspheres on the regenerated cellulose fibrils (RCFs). Consequently, the resultant ZnPBA/RCM features a high loading of ZnPBA (65.3 wt%) and exhibits excellent treatment efficiency and reusability in terms of photocatalytic degradation of tetracycline (TC) (90.3 % removal efficiency and 54.3 % of mineralization), oil-water separation efficiency (>97.8 % for varying oils) and antibacterial performance (99.4 % for E. coli and 99.2 % for S. aureus). This work paves a simple and useful way for exploiting cellulose-based functional materials for efficient wastewater purification.

摘要

光催化膜将膜分离和光催化结合在一起,为水净化提供了一种有效的解决方案,而当务之急是开发简单、高效、可再生且低成本的光催化膜材料。我们在此提出了一种简便的一石二鸟策略,构建了一种由普鲁士蓝类似物(ZnPBA)微球修饰的多功能再生纤维素复合膜,用于废水净化。假设如下:1)ZnCl 不仅作为纤维素的溶剂用于调节纤维素的溶解和再生,而且还作为原位生长球形 ZnPBA 的前体;2)更均匀的反应,包括 Zn、[Fe(CN)] 和纤维素链之间的配位和氢键,有助于 ZnPBA 微球快速均匀地锚定在再生纤维素原纤维(RCFs)上。因此,所得的 ZnPBA/RCM 具有高负载量的 ZnPBA(65.3wt%),并且在光催化降解四环素(TC)(90.3%去除效率和 54.3%的矿化)、油水分离效率(>97.8%的各种油)和抗菌性能(99.4%的大肠杆菌和 99.2%的金黄色葡萄球菌)方面表现出优异的处理效率和可重复使用性。这项工作为开发用于高效废水净化的纤维素基功能材料铺平了一条简单而有用的道路。

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