Li Jie, Yu Ying, Zhang Lizhi
Key Laboratory of Pesticide & Chemical Biology of Ministry of Education, Institute of Environmental Chemistry, College of Chemistry, Central China Normal University, Wuhan 430079, P. R. China.
Nanoscale. 2014 Aug 7;6(15):8473-88. doi: 10.1039/c4nr02553a.
In recent years, layered bismuth oxyhalide nanomaterials have received more and more interest as promising photocatalysts because their unique layered structures endow them with fascinating physicochemical properties; thus, they have great potential photocatalytic applications for environment remediation and energy harvesting. In this article, we explore the synthesis strategies and growth mechanisms of layered bismuth oxyhalide nanomaterials, and propose design principles of tailoring a layered configuration to control the nanoarchitectures for high efficient photocatalysis. Subsequently, we focus on their layered structure dependent properties, including pH-related crystal facet exposure and phase transformation, facet-dependent photoactivity and molecular oxygen activation pathways, so as to clarify the origin of the layered structure dependent photoreactivity. Furthermore, we summarize various strategies for modulating the composition and arrangement of layered structures to enhance the photoactivity of nanostructured bismuth oxyhalides via internal electric field tuning, dehalogenation effect, surface functionalization, doping, plasmon modification, and heterojunction construction, which may offer efficient guidance for the design and construction of high-performance bismuth oxyhalide-based photocatalysis systems. Finally, we highlight some crucial issues in engineering the layered-structure mediated properties of bismuth oxyhalide photocatalysts and provide tentative suggestions for future research on increasing their photocatalytic performance.
近年来,层状卤氧化铋纳米材料作为一种很有前景的光催化剂受到了越来越多的关注,因为其独特的层状结构赋予了它们迷人的物理化学性质;因此,它们在环境修复和能量收集方面具有巨大的光催化应用潜力。在本文中,我们探索了层状卤氧化铋纳米材料的合成策略和生长机制,并提出了定制层状结构以控制纳米结构用于高效光催化的设计原则。随后,我们重点研究了它们与层状结构相关的性质,包括与pH相关的晶面暴露和相变、晶面依赖性光活性和分子氧活化途径,以阐明与层状结构相关的光反应性的起源。此外,我们总结了各种调节层状结构的组成和排列以通过内电场调节、脱卤效应、表面功能化、掺杂、等离子体改性和异质结构建来增强纳米结构卤氧化铋光活性的策略,这可能为高性能卤氧化铋基光催化系统的设计和构建提供有效指导。最后,我们强调了在工程化卤氧化铋光催化剂的层状结构介导性质方面的一些关键问题,并为未来提高其光催化性能的研究提供了初步建议。