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还原氧化石墨烯介导的 Z 型 BiVO/CdS 纳米复合材料用于增强光催化分解有害有机污染物。

Reduced graphene oxide-mediated Z-scheme BiVO/CdS nanocomposites for boosted photocatalytic decomposition of harmful organic pollutants.

机构信息

Department of Environmental Engineering, Kyungpook National University, Daegu 702-701, South Korea.

School of Architecture, Kyungpook National University, Daegu, 702-701, South Korea.

出版信息

Sci Total Environ. 2018 Sep 1;635:741-749. doi: 10.1016/j.scitotenv.2018.04.169. Epub 2018 Apr 24.

Abstract

The efficient photocatalytic degradation of harmful organic pollutants (isoniazid (ISN) and 1,4-dioxane (DX)) via the Z-scheme electron transfer mechanism was accomplished using a photostable composite photocatalyst consisting of BiVO, CdS, and reduced graphene oxide (RGO). Compared to their pristine counterparts, the RGO-mediated Z-scheme CdS/BiVO (CdS/RGO-BiVO) nanocomposites exhibited superior degradation activities, mainly attributed to the prolonged charge separation. RGO was found to be involved in visible-light harvesting and acted as a solid-state electron mediator at the CdS/BiVO interface to realize an effective Z-scheme electron transfer pathway, avoid photocatalyst self-oxidation, and lengthen the life span of charge carriers. The results of reactive species scavenging experiments, photoluminescence measurements, and transient photocurrent measurements, as well as the calculated band potentials of the synthesized photocatalysts, supported the Z-scheme electron/hole pair separation mechanism. Additionally, the intermediates formed during the degradation of ISN and DX were identified, and a possible fragmentation pattern was proposed. This systematic work aims to develop photostable Z-scheme composites as unique photocatalytic systems for the efficient removal of harmful organic pollutants.

摘要

通过使用由 BiVO4、CdS 和还原氧化石墨烯 (RGO) 组成的光稳定复合光催化剂,实现了通过 Z 型电子转移机制对有害有机污染物(异烟肼 (ISN) 和 1,4-二恶烷 (DX))的有效光催化降解。与它们的原始对应物相比,RGO 介导的 Z 型 CdS/BiVO(CdS/RGO-BiVO)纳米复合材料表现出优异的降解活性,主要归因于电荷分离的延长。发现 RGO 参与可见光的收集,并在 CdS/BiVO 界面处充当固态电子介体,以实现有效的 Z 型电子转移途径,避免光催化剂自氧化,并延长载流子的寿命。反应性物质捕获实验、光致发光测量和瞬态光电流测量的结果以及合成光催化剂的计算能带电位支持 Z 型电子/空穴对分离机制。此外,鉴定了在 ISN 和 DX 降解过程中形成的中间体,并提出了可能的断裂模式。这项系统工作旨在开发光稳定的 Z 型复合材料作为独特的光催化系统,用于有效去除有害有机污染物。

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