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首页> 外文期刊>RSC Advances >Zinc oxide based photocatalysis: tailoring surface-bulk structure and related interfacial charge carrier dynamics for better environmental applications
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Zinc oxide based photocatalysis: tailoring surface-bulk structure and related interfacial charge carrier dynamics for better environmental applications

机译:基于氧化锌的光电催化:剪裁表面散装结构和相关的界面电荷载体动力学,用于更好的环境应用

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摘要

As an alternative to the gold standard TiO2 photocatalyst, the use of zinc oxide (ZnO) as a robust candidate for wastewater treatment is widespread due to its similarity in charge carrier dynamics upon bandgap excitation and the generation of reactive oxygen species in aqueous suspensions with TiO2. However, the large bandgap of ZnO, the massive charge carrier recombination, and the photoinduced corrosion-dissolution at extreme pH conditions, together with the formation of inert Zn(OH)(2) during photocatalytic reactions act as barriers for its extensive applicability. To this end, research has been intensified to improve the performance of ZnO by tailoring its surface-bulk structure and by altering its photogenerated charge transfer pathways with an intention to inhibit the surface-bulk charge carrier recombination. For the first time, the several strategies, such as tailoring the intrinsic defects, surface modification with organic compounds, doping with foreign ions, noble metal deposition, heterostructuring with other semiconductors and modification with carbon nanostructures, which have been successfully employed to improve the photoactivity and stability of ZnO are critically reviewed. Such modifications enhance the charge separation and facilitate the generation of reactive oxygenated free radicals, and also the interaction with the pollutant molecules. The synthetic route to obtain hierarchical nanostructured morphologies and study their impact on the photocatalytic performance is explained by considering the morphological influence and the defect-rich chemistry of ZnO. Finally, the crystal facet engineering of polar and non-polar facets and their relevance in photocatalysis is outlined. It is with this intention that the present review directs the further design, tailoring and tuning of the physico-chemical and optoelectronic properties of ZnO for better applications, ranging from photocatalysis to photovoltaics.
机译:作为金标准TiO2光催化剂的替代方案,氧化锌(ZnO)作为废水处理的稳健候选者的使用是由于其在带隙激发时的电荷载体动力学的相似性以及用TiO 2水悬浮液中的反应性氧物种的产生而存在的广泛。然而,ZnO,大量电荷载体重组和光致腐蚀溶解的大带隙在极端pH条件下,在光催化反应期间形成惰性Zn(2)的形成充当其广泛适用性的屏障。为此,通过剪裁其表面散装结构并通过改变其光生电电荷转移途径来改变研究,提高了改善ZnO的性能,以抑制表面散装电荷载体重组。首次进行多种策略,如剪裁内在缺陷,用有机化合物表面改性,掺杂外离子,贵金属沉积,异质结构与其他半导体,并用碳纳米结构改性,已经成功地用于改善光度照相ZnO的稳定性受到严格审查。这种修饰增强了电荷分离,并促进了反应性含氧自由基的产生,以及与污染物分子的相互作用。通过考虑形态学影响和ZnO的缺陷化学来解释以获得分层纳米结构形态和研究它们对光催化性能的影响的合成途径。最后,概述了极性和非极性方面的晶体刻面和它们在光催化中的相关性。目前综述目前的审查指示ZnO的物理化学和光电性能的进一步设计,剪裁和调整,以获得更好的应用,从光电催化到光伏。

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  • 来源
    《RSC Advances》 |2015年第5期|共46页
  • 作者单位

    Indian Inst Sci Dept Phys Bangalore 560012 Karnataka India;

    Indian Inst Sci Dept Phys Bangalore 560012 Karnataka India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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