Novel zinc oxide 3D tetrapod nano-microstructures: recent progress in synthesis, modification and tailoring of optical properties for photocatalytic applications

IF 5.2 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Astha Pujara, Rupam Sharma, Samriti, Mikhael Bechelany, Yogendra Kumar Mishra and Jai Prakash
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Abstract

There is a growing interest in the synthesis of novel semiconductor nano-microstructures and tailoring of their morphological properties for improved functionality and multifunctional applications. In this context, 3D zinc oxide tetrapods (ZnO TPs) have been emerged as promising photocatalyst materials due to their unique 3D morphology and excellent optoelectronic properties for sustainable removal of contaminants of emerging concern in the environment as well as other energy-related applications. ZnO TPs exhibit distinctive features when combined with other functional nanomaterials suggesting that these 3D nano-microstructures could be a valuable material for a range of futuristic applications. This review deals with the synthesis and modifications of novel 3D ZnO TPs as well as tailoring of their optical and morphological properties for potential photocatalytic applications in the field of energy and environment. Various synthesis methods of 3D ZnO TPs have been briefly discussed along with their advantages and disadvantages with emphasis on tailoring the surface and optical properties of 3D ZnO TPs. The promising applications of 3D ZnO TPs in photocatalytic degradation of environmental organic pollutants along with their antibacterial activity have been highlighted and discussed in detail. This review also emphasizes the use of 3D ZnO TPs in other fields of current interest of energy and environment such as photocatalytic H2 production, CO2 photoreduction, nano/micro-plastic remediation etc. The tunable optical properties and structural/morphological characteristics of 3D ZnO TPs, position them as versatile materials for multifunctional applications as well as open the way for future research and development in the field of energy, environmental and biomedical fields, have also been discussed along with various challenges.

Abstract Image

新型氧化锌三维四足纳米微结构:光催化应用光学性质的合成、修饰和裁剪的最新进展
人们对新型半导体纳米微结构的合成及其形态特性的调整越来越感兴趣,以改善其功能和多功能应用。在这种情况下,3D氧化锌四足体(ZnO TPs)由于其独特的3D形态和优异的光电性能,可以持续去除环境中新兴关注的污染物以及其他与能源相关的应用,已经成为有前途的光催化剂材料。当与其他功能纳米材料结合时,ZnO TPs表现出独特的特征,这表明这些3D纳米微结构可能是一种有价值的材料,用于一系列未来的应用。本文综述了新型三维氧化锌TPs的合成和修饰,以及它们在能源和环境领域潜在的光催化应用的光学和形态特性。简要讨论了三维氧化锌TPs的各种合成方法及其优缺点,重点讨论了三维氧化锌TPs的表面和光学性质。重点讨论了三维氧化锌TPs在光催化降解环境有机污染物方面的应用前景及其抗菌活性。本文还重点介绍了三维氧化锌TPs在光催化制氢、CO2光还原、纳米/微塑料修复等能源和环境领域的应用。3D ZnO TPs的可调光学特性和结构/形态特征,使其成为多功能应用的通用材料,并为未来在能源,环境和生物医学领域的研究和开发开辟了道路,也讨论了各种挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Materials Advances
Materials Advances MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.60
自引率
2.00%
发文量
665
审稿时长
5 weeks
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