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基于贻贝启发的协同光催化-光热性能固定光催化剂用于水修复。

Mussel-Inspired Immobilization of Photocatalysts with Synergistic Photocatalytic-Photothermal Performance for Water Remediation.

机构信息

College of Civil Engineering, Fuzhou University, 350116 Fujian, China.

State Key Laboratory of Photocatalysis on Energy and Environment, Fuzhou University, 350002 Fujian, China.

出版信息

ACS Appl Mater Interfaces. 2021 Jul 7;13(26):31066-31076. doi: 10.1021/acsami.1c02973. Epub 2021 Jun 17.

Abstract

The serious problem of pharmaceutical and personal care product pollution places great pressure on aquatic environments and human health. Herein, a novel coating photocatalyst was synthesized by adhering Ag-AgCl/WO/g-CN (AWC) nanoparticles on a polydopamine (PDA)-modified melamine sponge (MS) through a facile layer-by-layer assembly method to degrade trimethoprim (TMP). The formed PDA coating was used for the anchoring of nanoparticles, photothermal conversion, and hydrophilic modification. TMP (99.9%; 4 mg/L) was removed in 90 min by the photocatalyst coating (AWC/PDA/MS) under visible light via a synergistic photocatalytic-photothermal performance route. The stability and reusability of the AWC/PDA/MS have been proved by cyclic experiments, in which the removal efficiency of TMP was still more than 90% after five consecutive cycles with a very little mass loss. Quantitative structure-activity relationship analysis revealed that the ecotoxicities of the generated intermediates were lower than those of TMP. Furthermore, the solution matrix effects on the photocatalytic removal efficiency were investigated, and the results revealed that the AWC/PDA/MS still maintained excellent photocatalytic degradation efficiency in several actual water and simulated water matrices. This work develops recyclable photocatalysts for the potential application in the field of water remediation.

摘要

药品和个人护理产品污染的严重问题给水生环境和人类健康带来了巨大压力。在此,通过简便的层层组装法,将 Ag-AgCl/WO/g-CN(AWC)纳米颗粒附着在聚多巴胺(PDA)改性三聚氰胺海绵(MS)上来合成新型涂层光催化剂,用于降解甲氧苄啶(TMP)。形成的 PDA 涂层用于纳米颗粒的固定、光热转换和亲水改性。TMP(99.9%;4mg/L)在可见光下通过协同光催化-光热性能途径,在光催化剂涂层(AWC/PDA/MS)作用下 90min 内被去除。通过循环实验证明了 AWC/PDA/MS 的稳定性和可重复使用性,五次连续循环后 TMP 的去除效率仍超过 90%,且质量损失很小。定量构效关系分析表明,生成的中间产物的生态毒性低于 TMP。此外,还研究了溶液基质对光催化去除效率的影响,结果表明,在几种实际水样和模拟水样中,AWC/PDA/MS 仍保持优异的光催化降解效率。这项工作开发了可回收的光催化剂,有望在水修复领域得到应用。

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