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探究 g-C₃N₄/BiOCl 异质结构中纳米晶面取向对光催化性能的影响。

Exploring the effects of nanocrystal facet orientations in g-C₃N₄/BiOCl heterostructures on photocatalytic performance.

机构信息

Key Laboratory for Colloid and Interface Chemistry of State Educating Ministry, School of Chemistry and Chemical Engineering, Shandong University, Jinan 250100, China.

出版信息

Nanoscale. 2015 Dec 7;7(45):18971-83. doi: 10.1039/c5nr05154a. Epub 2015 Oct 29.

Abstract

Effective separation and migration of photogenerated electron-hole pairs are two key factors to determine the performance of photocatalysts. It has been widely accepted that photocatalysts with heterojunctions usually exhibit excellent charge separation. However, the migration process of separated charges in the heterojunction structures has not been fully investigated. Herein, photocatalysts with heterojunctions are constructed by loading g-C3N4 nanoparticles onto BiOCl nanosheets with different exposed facets (BOC-001 and BOC-010). The g-C3N4 nanoparticles with decreasing size and increasing zeta potential could induce stronger coupling and scattering in the heterojunction. The relationship between the crystal facet orientation in the BiOCl nanosheets and charge separation/effective migration behaviours of the materials is investigated. The visible light photocatalytic activity of the composites is evaluated by methyl orange (MO) and phenol degradation experiments, and the results show that ng-CN/BOC-010 composites exhibit higher photocatalytic performance than that of ng-CN/BOC-001 composites. Both photoelectrochemical and fluorescence emission measurements indicate that the different exposed facets in ng-CN/BiOCl composites could induce the migration of the photogenerated electrons in different ways, but do not significantly alter the separation efficiencies. The separated electrons in ng-CN/BOC-010 undergo a shorter transport distance than that of ng-CN/BOC-001 to reach the surface reactive sites. The study may suggest that the crystal facet orientation in polar semiconductors is a critical factor for designing highly efficient heterojunction photocatalysts.

摘要

有效分离和迁移光生电子-空穴对是决定光催化剂性能的两个关键因素。人们普遍认为,具有异质结的光催化剂通常表现出优异的电荷分离。然而,异质结结构中分离电荷的迁移过程尚未得到充分研究。在此,通过将 g-C3N4 纳米颗粒负载到具有不同暴露晶面(BOC-001 和 BOC-010)的 BiOCl 纳米片上,构建了具有异质结的光催化剂。尺寸减小和表面zeta 电位增加的 g-C3N4 纳米颗粒会在异质结中引起更强的耦合和散射。研究了 BiOCl 纳米片中晶面取向与材料电荷分离/有效迁移行为之间的关系。通过甲基橙(MO)和苯酚降解实验评价了复合材料的可见光光催化活性,结果表明,ng-CN/BOC-010 复合材料比 ng-CN/BOC-001 复合材料具有更高的光催化性能。光电化学和荧光发射测量均表明,ng-CN/BiOCl 复合材料中不同的暴露晶面可以以不同的方式诱导光生电子的迁移,但不会显著改变分离效率。ng-CN/BOC-010 中的分离电子经历的传输距离比 ng-CN/BOC-001 中的更短,以到达表面反应活性位。该研究可能表明,极性半导体中的晶面取向是设计高效异质结光催化剂的关键因素。

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