College of Environmental Science and Engineering, Key Laboratory of Environmental Biology and Pollution Control, Ministry of Education, Hunan University, Changsha 410082, China.
College of Environmental Science and Engineering, Key Laboratory of Environmental Biology and Pollution Control, Ministry of Education, Hunan University, Changsha 410082, China.
J Colloid Interface Sci. 2022 Mar 15;610:953-969. doi: 10.1016/j.jcis.2021.11.141. Epub 2021 Nov 27.
The semiconductor-based photocatalysts with local surface plasmon resonance (LSPR) effect can extend light response to near-infrared region (NIR), as well as promote charge-carriers transfer, which provide a novel insight into designing light-driven photocatalyst with excellent photocatalytic performance. Here, we designed cost-effective wide-spectrum ZnInS/WO composite with enhanced photocatalytic performance based on a dual-channel charge transfer pathway. Benefiting from the synergistic effect of Z-scheme heterostructure and unique LSPR effect, the interfacial charge-carriers transfer rate and light-absorbing ability of ZnInS/WO were enhanced significantly under visible and NIR (vis-NIR) light irradiation. More reactive oxygen species (ROS) were formed by efficient molecular oxygen activation, which were the critical factors for both Escherichia coli (E. coli) photoinactivation and tetracycline (TC) photodegradation. The enhancement of molecular oxygen activation (MOA) ability was verified via quantitative analyses, which evaluated the amount of ROS through degrading nitrotetrazolium blue chloride (NBT) and p-phthalic acid (TA). By combining theoretical calculations with diverse experimental results, we proposed a credible photocatalytic reaction mechanism for antibiotic degradation and bacteria inactivation. This study develops a new insight into constructing promising photocatalysts with efficient photocatalytic activity in practical wastewater treatment.
基于半导体的具有局域表面等离子体共振(LSPR)效应的光催化剂可以将光响应扩展到近红外区域(NIR),并促进载流子转移,这为设计具有优异光催化性能的光驱动光催化剂提供了新的思路。在这里,我们设计了一种基于双通道电荷转移途径的具有增强光催化性能的经济型宽光谱 ZnInS/WO 复合材料。得益于 Z 型异质结和独特的 LSPR 效应的协同作用,在可见光和近红外光(vis-NIR)照射下,ZnInS/WO 的界面载流子转移速率和光吸收能力得到了显著提高。通过有效的分子氧活化形成了更多的活性氧物种(ROS),这是大肠杆菌(E. coli)光灭活和四环素(TC)光降解的关键因素。通过定量分析来验证增强的分子氧活化(MOA)能力,通过降解硝氮蓝四唑氯(NBT)和对苯二甲酸(TA)来评估 ROS 的量。通过结合理论计算和各种实验结果,我们提出了一种可靠的光催化反应机制,用于抗生素降解和细菌失活。本研究为构建在实际废水处理中具有高效光催化活性的有前途的光催化剂提供了新的思路。