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Predicting and identifying reactive oxygen species and electrons for photocatalytic metal sulfide micro-nano structures

机译:预测和识别光催化金属硫化物微纳结构的活性氧和电子

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摘要

A broadly applicable theoretical and experimental framework was developed for understanding the photocatalytic mechanism of semiconductors. Using this framework, we found that it is possible to predict the type and reactivity of reactive oxygen species and electrons produced during photoexcitation of semiconductors by comparing the band edge energies of semiconductors with the redox potentials of relevant species. In addition, we could experimentally verify these predictions using electron spin resonance spectroscopy (ESR) with spin trapping and spin labeling techniques. We selected four types of metal sulfides (CdS, ZnS, In2S3, and Bi2S3) to elucidate the applicability of this model system. Using ESR technique, we found that these four sulfides are significantly different in the types of produced reactive oxygen species. When irradiated, ZnS can generate superoxide (O-2(-center dot)), hydroxyl radicals ((OH)-O-center dot), and singlet oxygen (O-1(2)); CdS and In2S3 can produce O-2(-center dot), while irradiation of Bi2S3 generates none of these reactive oxygen species. These results are correlated with the photocatalytic oxidation and reduction activities of metal sulfide structures. (C) 2014 Elsevier Inc. All rights reserved.
机译:建立了广泛适用的理论和实验框架,以了解半导体的光催化机理。使用此框架,我们发现可以通过将半导体的带边能量与相关物种的氧化还原电势进行比较来预测半导体光激发过程中产生的活性氧物种和电子的类型和反应性。此外,我们可以使用电子自旋共振光谱(ESR)和自旋俘获和自旋标记技术,通过实验验证这些预测。我们选择了四种类型的金属硫化物(CdS,ZnS,In2S3和Bi2S3)来阐明此模型系统的适用性。使用ESR技术,我们发现这四种硫化物在产生的活性氧种类上有很大不同。辐射时,ZnS可以生成超氧化物(O-2(中心点)),羟基自由基((OH)-O中心点)和单线态氧(O-1(2))。 CdS和In2S3可以产生O-2(中心点),而Bi2S3的照射则不会产生这些活性氧。这些结果与金属硫化物结构的光催化氧化和还原活性有关。 (C)2014 Elsevier Inc.保留所有权利。

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