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利用静电纺丝壳聚糖/g-CN/TiO2 纳米纤维的吸附/光催化协同作用增强 Cr(VI)去除效率。

Enhancement of Cr(VI) removal efficiency via adsorption/photocatalysis synergy using electrospun chitosan/g-CN/TiO nanofibers.

机构信息

College of Environmental Science & Engineering, Qingdao University, Qingdao 266071, China.

Collaborative Innovation Center for Nanomaterials & Devices, College of Physics, Qingdao University, Qingdao 266071, China.

出版信息

Carbohydr Polym. 2021 Feb 1;253:117200. doi: 10.1016/j.carbpol.2020.117200. Epub 2020 Oct 11.

Abstract

Chitosan/g-CN/TiO (CS/CNT) nanofibers were fabricated by electrospinning technique for Cr(VI) removal through the adsorption and photocatalytic processes. The effects of crucial factors in the adsorption process including contact time (0-1440 min), pH (1-7), initial concentration of Cr(VI) (20-800 mg/L) were investigated. The photocatalytic experiment was executed in a photochemical reactor with an 800 W xenon lamp to simulate visible light. In adsorption process, at pH = 2, the adsorption capacities of chitosan (CS) nanofibers, CS/CNT (CS : g-CN/TiO = 10:1) nanofibers and CS/CNT nanofibers were 20.8, 165.3 and 68.9 mg/g, respectively, suggesting the addition of g-CN/TiO (CNT) could notably enhance the acid resistance of CS and widen its practical application. Under visible-light irradiation, the removal efficiency of Cr(VI) using CS/CNT nanofibers was appreciably improved, which was about 50 % higher than that of pure adsorption, indicating that the CS/CNT nanofibers exhibited the effective synergistic effect of adsorption and photocatalysis.

摘要

壳聚糖/氮化碳/二氧化钛(CS/CNT)纳米纤维通过静电纺丝技术制备,用于通过吸附和光催化过程去除六价铬(Cr(VI))。研究了吸附过程中关键因素的影响,包括接触时间(0-1440 分钟)、pH 值(1-7)、Cr(VI)的初始浓度(20-800 mg/L)。光催化实验在装有 800 W 氙灯的光化学反应器中进行,以模拟可见光。在吸附过程中,在 pH = 2 时,壳聚糖(CS)纳米纤维、CS/CNT(CS:g-CN/TiO = 10:1)纳米纤维和 CS/CNT 纳米纤维的吸附容量分别为 20.8、165.3 和 68.9 mg/g,表明添加 g-CN/TiO(CNT)可以显著提高 CS 的耐酸性,并拓宽其实际应用范围。在可见光照射下,CS/CNT 纳米纤维对 Cr(VI)的去除效率显著提高,比纯吸附提高了约 50%,表明 CS/CNT 纳米纤维表现出吸附和光催化的有效协同作用。

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