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AgNbO 中的铁电性与肖特基异质结工程:提升压电光催化活性的同步方法

Ferroelectricity and Schottky Heterojunction Engineering in AgNbO: A Simultaneous Way of Boosting Piezo-photocatalytic Activity.

作者信息

Zhang Yang, Luo Nengneng, Zeng Deqian, Xu Chao, Ma Li, Luo Gengguang, Qian Yixin, Feng Qin, Chen Xiyong, Hu Changzheng, Liu Laijun, Fujita Toyohisa, Wei Yuezhou

机构信息

Guangxi Key Laboratory of Processing for Non-ferrous Metallic and Featured Materials, School of Resources, Environment and Materials, Guangxi University, Nanning 530004, China.

Center on Nanoenergy Research, School of Resources, Environment and Materials, Guangxi University, Nanning 530004, China.

出版信息

ACS Appl Mater Interfaces. 2022 May 18;14(19):22313-22323. doi: 10.1021/acsami.2c04408. Epub 2022 May 3.

Abstract

As an efficient and economical way of dealing with organic pollutants, piezo-photocatalysis has attracted great interest. In this work, we demonstrated that ferroelectricity and Schottky heterojunction engineering could significantly enhance the piezo-photocatalytic activity of AgNbO. The poled 20 mol % K doped AgNbO disclosed its superior piezo-photocatalytic activity of 0.131 min for 10 mgL RhB, which is 7.8 times of the pristine one under the condition of illumination only. The designed piezo-photocatalyst also exhibited good piezo-photocatalytic stability after four cycles. These merits are attributed to the built-in electric field associated with the large spontaneous polarization and low coercive field originated from the stable ferroelectric state after ferroelectricity engineering, plus with the electron trapper effect of the in situ precipitated metal Ag particles. Our work not only provides a promising piezo-photocatalyst for degrading organic contaminants but also paves a good way for developing high piezo-photocatalytic activity catalysts.

摘要

作为一种处理有机污染物的高效且经济的方式,压电光催化已引起了极大的关注。在这项工作中,我们证明了铁电和肖特基异质结工程可以显著提高AgNbO₃的压电光催化活性。极化的20 mol% K掺杂AgNbO₃对10 mg/L RhB显示出其优异的压电光催化活性,在仅光照条件下,其活性为0.131 min⁻¹,是原始样品的7.8倍。所设计的压电光催化剂在四个循环后也表现出良好的压电光催化稳定性。这些优点归因于与大自发极化和低矫顽场相关的内建电场,该电场源于铁电工程后的稳定铁电状态,再加上原位沉淀的金属Ag颗粒的电子俘获效应。我们的工作不仅为降解有机污染物提供了一种有前景的压电光催化剂,也为开发具有高光压电催化活性的催化剂铺平了道路。

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