| Literature DB >> 25803813 |
Haidong Li1, Yuanhua Sang1, Sujie Chang1, Xin Huang2, Yan Zhang2, Rusen Yang3, Huaidong Jiang1, Hong Liu1,2, Zhong Lin Wang2,4.
Abstract
An electric field built inside a crystal was proposed to enhance photoinduced carrier separation for improving photocatalytic property of semiconductor photocatalysts. However, a static built-in electric field can easily be saturated by the free carriers due to electrostatic screening, and the enhancement of photocatalysis, thus, is halted. To overcome this problem, here, we propose sonophotocatalysis based on a new hybrid photocatalyst, which combines ferroelectric nanocrystals (BaTiO3) and semiconductor nanoparticles (Ag2O) to form an Ag2O-BaTiO3 hybrid photocatalyst. Under periodic ultrasonic excitation, a spontaneous polarization potential of BaTiO3 nanocrystals in responding to ultrasonic wave can act as alternating built-in electric field to separate photoinduced carriers incessantly, which can significantly enhance the photocatalytic activity and cyclic performance of the Ag2O-BaTiO3 hybrid structure. The piezoelectric effect combined with photoelectric conversion realizes an ultrasonic-wave-driven piezophototronic process in the hybrid photocatalyst, which is the fundamental of sonophotocatalysis.Keywords: built-in electric field; piezophototronics; sonophotocatalysis; ultrasonic wave
Year: 2015 PMID: 25803813 DOI: 10.1021/nl504630j
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189