方便制备金雀石支撑的银氯化银复合光催化剂以增强四环素的降解能力

Catalysts Pub Date : 2024-07-19 DOI:10.3390/catal14070464
Xiaojie Zhang, Huiqin Wang, Chenlong Yan
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引用次数: 0

摘要

本研究以ATP纳米棒为催化剂支持物,通过直接沉淀法合成了Ag-AgCl/attapulgite(Ag-AgCl/ATP)复合材料。ATP 纳米棒有助于增加 Ag-AgCl 颗粒的分散性,拓宽光吸收光谱,从而增加催化剂的活性位点,促进四环素(TC)的降解。通过降解四环素,评估了 Ag-AgCl/ATP 复合材料的光催化活性,发现 Ag-AgCl 的负载量、四环素的浓度和反应温度是影响活性的关键因素。具体而言,当 Ag-AgCl 的负载量为 75% 时,光催化降解效率为 77.65%,达到最佳条件。此外,当 TC 浓度为 20 mg/L、温度为 20 ℃ 时,降解效率最高(85.01%)。自由基捕获实验表明,超氧阴离子自由基(-O2-)是降解过程中的主要活性物种,尽管羟基自由基(-OH)和空穴(h+)也有贡献。可重复使用性测试证实,AgCl/ATP 复合材料具有出色的稳定性,可以有效地重复使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Facile Preparation of Attapulgite-Supported Ag-AgCl Composite Photocatalysts for Enhanced Degradation of Tetracycline
In this study, Ag-AgCl/attapulgite (Ag-AgCl/ATP) composites were synthesized via a direct precipitation method using ATP nanorods as a catalyst supporter. ATP nanorods helped to increase the dispersion of Ag-AgCl particles and broaden the light absorption spectrum, which would also help to increase the active site of the catalyst to promote the degradation of tetracycline (TC). The photocatalytic activity of the Ag-AgCl/ATP composites was evaluated through the degradation of TC, identifying the loading amount of Ag-AgCl, the concentration of TC, and the reaction temperature as critical factors influencing activity. Specifically, the optimal conditions were observed when the loading of Ag-AgCl was 75%, resulting in a photocatalytic degradation efficiency of 77.65%. Furthermore, the highest degradation efficiency (85.01%) was achieved with a TC concentration of 20 mg/L at 20 °C. Radical trapping experiments suggested that the superoxide anion radical (·O2−) was the primary active species in the degradation process, although hydroxyl radicals (·OH) and holes (h+) also contributed. Reusability tests confirmed that the Ag-AgCl/ATP composites exhibited excellent stability and could be effectively reused.
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