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CdS量子点/IO-TiO异质结中慢光子效应与Z型电荷转移耦合协同增强光催化降解

Synergistically Enhanced Photocatalytic Degradation by Coupling Slow-Photon Effect with Z-Scheme Charge Transfer in CdS QDs/IO-TiO Heterojunction.

作者信息

Zhu Li-Bang, Bao Ning, Zhang Qing, Ding Shou-Nian

机构信息

School of Chemistry and Chemical Engineering, Southeast University, Nanjing 211189, China.

School of Public Health, Nantong University, Nantong 226019, China.

出版信息

Molecules. 2023 Jul 16;28(14):5437. doi: 10.3390/molecules28145437.

Abstract

Lower light absorption and faster carrier recombination are significant challenges in photocatalysis. This study introduces a novel approach to address these challenges by anchoring cadmium sulfide quantum dots (CdS QDs) on inverse opal (IO)-TiO, which increases light absorption and promotes carriers' separation by coupling slow-photon effect with Z-scheme charge transfer. Specifically, the IO-TiO was created by etching a polystyrene opal template, which resulted in a periodic structure that enhances light absorption by reflecting light in the stop band. The size of CdS quantum dots (QDs) was regulated to achieve appropriate alignment of energy bands between CdS QDs and IO-TiO, promoting carrier transfer through alterations in charge transfer modes and resulting in synergistic-amplified photocatalysis. Theoretical simulations and electrochemical investigations demonstrated the coexistence of slow-photon effects and Z-scheme transfer. The system's photodegradation performance was tested using rhodamine B as a model. This novel hierarchical structure of the Z-scheme heterojunction exhibits degradability 7.82 and 4.34 times greater than pristine CdS QDs and IO-TiO, respectively. This study serves as a source of inspiration for enhancing the photocatalytic capabilities of IO-TiO and broadening its scope of potential applications.

摘要

较低的光吸收和较快的载流子复合是光催化领域面临的重大挑战。本研究引入了一种新方法来应对这些挑战,即将硫化镉量子点(CdS QDs)锚定在反蛋白石(IO)-TiO上,通过将慢光子效应与Z型电荷转移相结合来增加光吸收并促进载流子分离。具体而言,通过蚀刻聚苯乙烯蛋白石模板制备了IO-TiO,形成了一种周期性结构,该结构通过在禁带中反射光来增强光吸收。调节CdS量子点(QDs)的尺寸,以实现CdS QDs与IO-TiO之间能带的适当排列,通过改变电荷转移模式促进载流子转移,从而产生协同放大的光催化作用。理论模拟和电化学研究证明了慢光子效应和Z型转移的共存。以罗丹明B为模型测试了该体系的光降解性能。这种新型的Z型异质结分层结构的降解能力分别比原始CdS QDs和IO-TiO高7.82倍和4.34倍。本研究为提高IO-TiO的光催化能力及其潜在应用范围提供了灵感来源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3331/10385498/05b8719532d9/molecules-28-05437-g003.jpg

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