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基于电纺金属氧化物半导体的光催化剂综述。

A review of electrospun metal oxide semiconductor-based photocatalysts.

作者信息

Guo Fushui, Hao Liantao, Feng Liu, Hu Bingjie, Niu Jinye, Zhang Xuliang, Chen Shuangying, Liu Bo

机构信息

Analysis and Testing Center, Shandong University of Technology, 266 Xincun Xi road, Zibo 255000, P.R. China.

Laboratory of Functional Molecules and Materials, School of Physics and Optoelectronic Engineering, Shandong University of Technology, 266 Xincun Xi road, Zibo 255000, P.R. China.

出版信息

iScience. 2024 Dec 21;28(1):111675. doi: 10.1016/j.isci.2024.111675. eCollection 2025 Jan 17.

Abstract

In recent years, photocatalytic materials with a nanofiber-like morphology have garnered a surge of academic attention due to their distinctive properties, including an expansive specific surface area, a considerable high aspect ratio, a pronounced resistance to agglomeration, superior electron survivability, and robust surface activity. Consequently, the synthesis of photocatalytic nanofiber materials through various methodologies has drawn considerable attention. The electrospinning technique has been established as a prevalent method for fabricating nanofiber-structured materials, owing to its advantageous properties, including the ability for mass production and the assurance of high continuity. This review focuses on metal oxide semiconductor-based materials, which are crucial components of photocatalysts. We summarize several recent studies that explore morphology modulation, surface modification, element doping, and composite construction using uniaxial and coaxial electrospinning techniques. Finally, we present potential approaches for constructing high-activity photocatalytic systems through electrospinning technique.

摘要

近年来,具有纳米纤维状形态的光催化材料因其独特的性能而受到学术界的广泛关注,这些性能包括广阔的比表面积、相当高的长径比、显著的抗团聚性、优异的电子存活能力和强大的表面活性。因此,通过各种方法合成光催化纳米纤维材料引起了相当大的关注。静电纺丝技术已成为制备纳米纤维结构材料的一种常用方法,这得益于其具有大规模生产能力和高连续性保证等优点。本综述聚焦于作为光催化剂关键组分的金属氧化物半导体基材料。我们总结了最近几项利用单轴和同轴静电纺丝技术探索形态调控、表面改性、元素掺杂和复合结构构建的研究。最后,我们提出了通过静电纺丝技术构建高活性光催化体系的潜在方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb40/11761326/0e252063b059/fx1.jpg

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