材料科学
罗丹明B
光催化
靛蓝胭脂红
异质结
载流子
半导体
波段图
压电
纳米线
降级(电信)
带材弯曲
极化(电化学)
化学工程
罗丹明
光电子学
纳米技术
复合材料
荧光
核化学
催化作用
光学
电子工程
物理
工程类
物理化学
化学
生物化学
作者
Qiong Liu,Di Zhai,Zhida Xiao,Chen Tang,Qiwei Sun,Chris Bowen,Hang Luo,Dou Zhang
出处
期刊:Nano Energy
[Elsevier]
日期:2021-11-11
卷期号:92: 106702-106702
被引量:190
标识
DOI:10.1016/j.nanoen.2021.106702
摘要
The induced built-in electric field by piezoelectric materials has proven to be one of the most effective strategies for modulating the charge-transfer pathway and inhibiting carrier recombination. In this work, a series of core-shell structured BaTiO3@TiO2 nanowires ([email protected]2 NWs) heterojunctions were synthesized and the significant coupling effects between BaTiO3 (BT) and TiO2 resulted in surperior piezo-photocatalytic performance, which was demonstrated by three typical types of dyes with high concentrations. The degradation efficiency of 30 mg/L Rhodamine B (RhB), Methylene blue (MB) and Indigo Carmine (IC) solutions by 0.5 g/L [email protected]2 NWs reached 99.5% in 75 min, 99.8% in 105 min and 99.7% in 45 min, respectively, which are much higher than piezo-photocatalysis systems reported before. To reveal the coupling mechanisms, photoelectrochemical measurements and band diagram analysis were carried out. The carrier concentration was increased from 2.28 × 1017 cm−3 to 4.91 × 1018 cm−3 and the lifetime of charges was improved from 50.37 ms to 60.98 ms due to the construction of a heterojunction between TiO2 and BT. It was proposed that the tilting and bending of the energy band caused by the introduction of a piezoelectric polarization can facilitate carrier separation both in the bulk phase and at the surfaces of semiconductors, resulting in outstanding piezo-photocatalytic properties for highly concentrated dye degradation. This work provides a universal catalyzer for highly concentrated dye degradation.
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