材料科学
贵金属
等离子体子
压电
光催化
可见光谱
肖特基势垒
光电子学
纳米纤维
半导体
罗丹明B
纳米棒
纳米技术
复合材料
催化作用
金属
生物化学
化学
二极管
冶金
作者
Fengrui Li,Baojie Shan,Xiaofei Zhao,Chang Ji,Zhen Li,Jing Yu,Shicai Xu,Jing Wang,Chao Zhang,Baoyuan Man
出处
期刊:Optics Express
[The Optical Society]
日期:2022-08-11
卷期号:30 (18): 32509-32509
被引量:6
摘要
The coordination of piezoelectric and plasmonic effects to regulate the separation and migration of photo-generated carriers is still a significant method to improve the performance of visible-light photoresponse. Herein, we propose the PVDF@Ag-ZnO/Au composite nanofiber membranes utilizing the piezoelectric and plasmonic effects to promote the photocatalytic degradation of organic dyes. Here, ZnO nanorods can generate a built-in electric field under vibration to separate electron-hole pairs. The Schottky junction formed by noble metal/semiconductor can not only inhibit the recombination of photo-generated carriers and accelerate the migration of carriers, but also enhance the utilization of visible light. In addition, the structure has excellent flexibility and easy recycling characteristics. We demonstrate that the plasmonic effect of noble metal can enhance the light response of membranes and broaden light absorption from ultraviolet to visible light region. With the help of the surface-enhanced Raman scattering (SERS), modulation effects of the piezoelectric effect on light response is proved. For catalytic processes, rhodamine B (98.8%) can be almost completely degraded using PVDF@Ag-ZnO/Au within 120 minutes in the piezoelectric photocatalysis process, which is 2.2 and 2.8 times higher than photocatalysis and piezoelectric catalysis, respectively. This work provides a promising strategy for harnessing solar and mechanical energy.
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