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原位共掺杂 Hf/Zr 的 FeO 纳米棒负载 CuO/CoO:增强的光催化抗菌和有机污染物降解性能。

In-situ Hf/Zr co-doped FeO nanorod decorated with CuO/CoO: Enhanced photocatalytic performance for antibacterial and organic pollutants.

机构信息

Division of Biotechnology, Safety, Environment and Life Science Institute, College of Environmental and Bioresource Sciences, Jeonbuk National University, Iksan, 54596, Republic of Korea.

Division of Biotechnology, Safety, Environment and Life Science Institute, College of Environmental and Bioresource Sciences, Jeonbuk National University, Iksan, 54596, Republic of Korea; School of Civil and Environmental Engineering, Cornell University, Ithaca, NY, 14853, USA.

出版信息

Chemosphere. 2024 Jul;360:142450. doi: 10.1016/j.chemosphere.2024.142450. Epub 2024 May 25.

Abstract

Herein, we successfully synthesized Hf/Zr co-doping on FeO nanorod photocatalyst by a hydrothermal process and quenching methods. The synergistic roles of Hf and Zr double-doping on the bacteria inactivation test and decomposition of organic pollutants were investigated in detail for the 1 wt% CoO loaded Hf/Zr-FeO NRs and CuO/CoO loaded Hf/Zr-FeO NRs photocatalyst. Initially, the rod-like porous morphology of the Hf/Zr-doped FeO NRs was produced via a hydrothermal method at various Hf co-doping (0, 2, 4, 7 and 10)%. Further, CoO and CuO loaded by a wet impregnation approach on the Hf/Zr-FeO NRs and a highly photoactive Hf(4)/Zr-FeO [CoO/CuO] NRs photocatalyst were developed. After the Hf(4)/Zr-FeO [CoO/CuO] NRs photocatalyst treatment, the Bio-TEM imagery of bacterial cells showed extensive morphological deviations in cell membranes. Hf(4)/Zr-FeO NR achieved 84.1% orange II degradation upon 3 h illumination, which is higher than that of Hf-FeO and Zr-FeO (68.7 and 73.5%, respectively). Additionally, the optimum sample, Hf(4)/Zr-FeO [CoO/CuO] photocatalyst, exhibited 95.5% orange II dye degradation after light radiation for 3 h. Optimized Hf(4)/Zr-FeO [CoO/CuO] catalysts exhibited 99.9% and 99.7% inactivation of E. coli and S. aureus with 120 min, respectively. Further, scavenger experiments revealed that the electrons are the primary responsible species for photocatalytic kinetics. This work will provide a rapid method for the development of high photocatalytic performance materials for bacterial disinfection and organic degradation.

摘要

在此,我们通过水热法和淬火法成功合成了 Hf/Zr 共掺杂的 FeO 纳米棒光催化剂。详细研究了 1wt%CoO 负载的 Hf/Zr-FeO NRs 和 CuO/CoO 负载的 Hf/Zr-FeO NRs 光催化剂中 Hf 和 Zr 双掺杂对细菌灭活试验和有机污染物分解的协同作用。首先,通过水热法在不同的 Hf 共掺杂(0、2、4、7 和 10)%下制备了具有棒状多孔形貌的 Hf/Zr 掺杂 FeO NRs。进一步,通过湿浸渍法将 CoO 和 CuO 负载在 Hf/Zr-FeO NRs 上,并开发了高活性的 Hf(4)/Zr-FeO [CoO/CuO] NRs 光催化剂。在 Hf(4)/Zr-FeO [CoO/CuO] NRs 光催化剂处理后,细菌细胞的 Bio-TEM 图像显示细胞膜的形态发生了广泛的偏差。在 3 小时光照下,Hf(4)/Zr-FeO NR 实现了 84.1%的橙色 II 降解,高于 Hf-FeO 和 Zr-FeO(分别为 68.7%和 73.5%)。此外,最佳样品 Hf(4)/Zr-FeO [CoO/CuO] 光催化剂在 3 小时光照后显示出 95.5%的橙色 II 染料降解。优化后的 Hf(4)/Zr-FeO [CoO/CuO] 催化剂分别在 120 分钟内对大肠杆菌和金黄色葡萄球菌的灭活率达到 99.9%和 99.7%。进一步的猝灭实验表明,电子是光催化动力学的主要活性物种。这项工作将为开发用于细菌消毒和有机降解的高光催化性能材料提供一种快速方法。

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