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基于BiS包覆的BaTiO纳米棒异质结构的增强型可见光响应压电光催化

Enhanced visible light responsive piezoelectric photocatalysis based on BiS coated BaTiO nanorods heterostructures.

作者信息

Liu Yu, Zheng Jian, Zhu Zhijia, Huang Zhangmi, Hu Chunyan, Liu Baojiang

机构信息

Key Lab of Science and Technology of Eco-textile, Ministry of Education, College of Chemistry, Chemical Engineering, Innovation Center for Textile Science and Technology, Donghua University, No. 2999 North Renmin Road, Shanghai 201620, China.

Key Lab of Science and Technology of Eco-textile, Ministry of Education, College of Chemistry, Chemical Engineering, Innovation Center for Textile Science and Technology, Donghua University, No. 2999 North Renmin Road, Shanghai 201620, China.

出版信息

J Colloid Interface Sci. 2025 Jan 15;678(Pt B):657-670. doi: 10.1016/j.jcis.2024.09.064. Epub 2024 Sep 11.

Abstract

Although the presence of the built-in electric field will solve the problem of carrier complexation in photocatalytic systems to some extent. However, free carriers will quickly shield the stabilized electric field and lose its effect. Therefore, how to introduce the dynamic piezoelectric field into the photocatalytic system has become an imminent problem. Herein, we developed an overcoated, visible light responsive, piezoelectric-assisted photocatalytic system by depositing BiS photocatalysts with a narrow-band system onto the surface of highly piezo-responsive BaTiO nanorods (BTO NRs). The heterojunction structure, bound by Bi-O chemical bonding, enhances carrier transport efficiency under the influence of the piezoelectric field. In the degradation experiments, the first-order rate constant for the degradation of chlortetracycline hydrochloride (CTC) in the BTO NRs/BiS system with the optimal complex ratio was 0.0276 min, which was 3.1 and 7.8 times higher than that of BTO NRs and BiS, respectively. Additionally, we deduced the degradation pathways of CTC through a combination of Density functional theory (DFT) calculations and Liquid Chromatograph Mass Spectrometer (LC-MS), evaluating the toxicity of the intermediates. This complex system, featuring a highly photo-responsive semiconductor as a photo-acceptor deposited on a piezoelectric semiconductor surface providing a dynamic built-in electric field, enhances carrier separation efficiency under optimal light energy utilization conditions. These findings present novel and effective strategies for addressing two primary challenges in photocatalytic systems: low spectral utilization and significant photogenerated carrier complexation.

摘要

尽管内置电场的存在将在一定程度上解决光催化系统中载流子复合的问题。然而,自由载流子会迅速屏蔽稳定的电场并失去其作用。因此,如何将动态压电场引入光催化系统已成为一个紧迫的问题。在此,我们通过将具有窄带系统的BiS光催化剂沉积在高压电响应性的BaTiO纳米棒(BTO NRs)表面,开发了一种包覆、可见光响应、压电辅助的光催化系统。由Bi-O化学键结合的异质结结构在压电场的影响下提高了载流子传输效率。在降解实验中,具有最佳复合比例的BTO NRs/BiS系统中盐酸金霉素(CTC)降解的一级速率常数为0.0276 min,分别是BTO NRs和BiS的3.1倍和7.8倍。此外,我们通过结合密度泛函理论(DFT)计算和液相色谱-质谱联用仪(LC-MS)推导了CTC的降解途径,评估了中间体的毒性。这种复合系统以高感光半导体作为光受体沉积在提供动态内置电场的压电半导体表面,在最佳光能利用条件下提高了载流子分离效率。这些发现为解决光催化系统中的两个主要挑战:低光谱利用率和显著的光生载流子复合,提供了新颖有效的策略。

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