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化学键合的BaTiO@ReS肖特基异质结中电荷转移的调控用于压电增强光催化

Directing Charge Transfer in a Chemical-Bonded BaTiO @ReS Schottky Heterojunction for Piezoelectric Enhanced Photocatalysis.

作者信息

Liu Wei, Wang Peifang, Ao Yanhui, Chen Juan, Gao Xin, Jia Baohua, Ma Tianyi

机构信息

Key Laboratory of Integrated Regulation and Resource Development on Shallow Lakes, Ministry of Education, College of Environment, Hohai University, No. 1, Xikang road, Nanjing, 210098, China.

School of Science, RMIT University, Melbourne, VIC, 3000, Australia.

出版信息

Adv Mater. 2022 Jul;34(29):e2202508. doi: 10.1002/adma.202202508. Epub 2022 Jun 7.

DOI:10.1002/adma.202202508
PMID:35560713
Abstract

The piezo-assisted photocatalysis system, which can utilize solar energy and mechanical energy simulteneously, is promising but still challenging in the environmental remediation field. In this work, a novel metal-semiconductor BaTiO @ReS Schottky heterostructure is designed and it shows high-efficiency on piezo-assisted photocatalytic molecular oxygen activation. By combining experiment and calculation results, the distorted metal-phase ReS nanosheets are found to be closely anchored on the surface of the BaTiO nanorods, through interfacial ReO covalent bonds. The Schottky heterostructure not only forms electron-transfer channels but also exhibits enhanced oxygen activation capacity, which are helpful to produce more superoxide radicals. The polarization field induced by the piezoelectric BaTiO can lower the Schottky barrier and thus reduce the transfer resistance of photogenerated electrons directing to the ReS . As a result of the synergy effect between the two components, the BaTiO @ReS exhibits untrahigh activity for degradation of pollutants with an apparent rate constant of 0.133 min for piezo-assisted photocatalysis, which is 16.6 and 2.44 times as that of piezocatalysis and photocatalysis, respectively. This performance is higher than most reported BaTiO -based piezo-assisted photocatalysis systems. This work paves the way for the design of high-efficiency piezo-assisted photocatalytic materials for environmental remediation through using green energies in nature.

摘要

能够同时利用太阳能和机械能的压电辅助光催化系统在环境修复领域具有广阔前景,但仍面临挑战。在这项工作中,设计了一种新型的金属 - 半导体BaTiO₃@ReS₂肖特基异质结构,它在压电辅助光催化分子氧活化方面表现出高效性。通过结合实验和计算结果发现,畸变的金属相ReS₂纳米片通过界面ReO共价键紧密锚定在BaTiO₃纳米棒表面。该肖特基异质结构不仅形成了电子转移通道,还表现出增强的氧活化能力,有助于产生更多的超氧自由基。由压电BaTiO₃诱导产生的极化场可以降低肖特基势垒,从而降低光生电子向ReS₂转移的电阻。由于两种组分之间的协同效应,BaTiO₃@ReS₂在压电辅助光催化降解污染物方面表现出超高活性,其表观速率常数为0.133 min⁻¹,分别是压电催化和光催化的16.6倍和2.44倍。这一性能高于大多数已报道的基于BaTiO₃的压电辅助光催化系统。这项工作为通过利用自然界中的绿色能源设计用于环境修复的高效压电辅助光催化材料铺平了道路。

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