Ferroelectric heterostructure nanocomposites based on Bi2MoO6 nanosheets and Bi2S3 nanorods for rapid piezocatalysis of organic dyes and antibiotics

[Display omitted] •Type II heterojunction materials with good piezoelectric response were prepared.•Bi-based composites showed rapid degradation of organic pollutants.•The piezoelectric catalytic mechanism and polarity matching principle were revealed. Among numerous polluting compounds, the organic...

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Veröffentlicht in:Materials & design 2024-05, Vol.241, p.112942, Article 112942
Hauptverfasser: Xi, Cuilu, Xu, Jiang, Chen, Haonan, Wang, Jiawen, Zhang, Xinna, Li, Yinyan, Bai, Gongxun, Xu, Hui, Xiao, Zhen, Xu, Shiqing
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Sprache:eng
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Zusammenfassung:[Display omitted] •Type II heterojunction materials with good piezoelectric response were prepared.•Bi-based composites showed rapid degradation of organic pollutants.•The piezoelectric catalytic mechanism and polarity matching principle were revealed. Among numerous polluting compounds, the organic dyes and antibiotics are two servious factors causing water pollution. Hence, it is urgent to find a fast and safe way to degrade waste water in a sustainable approach. Here, ferroelectric heterostructure based on 2D Bi2MoO6 nanosheets and Bi2S3 nanorods has been prepared by a two-step solvothermal method for the reduction of organic dyes and antibiotics. Due to the energy band balance between Bi2S3 and Bi2MoO6, the formed type-II heterostructure can populate charge transfer at the junction and effectively inhibit electron-hole recombination. Under ultrasonic stimulation, catalytic active sites of a Bi2MoO6/Bi2S3 heterostructure for pollutant degradation can be generated through rapid charge transfer activation, thus enhancing the catalytic degradation effect of organic dyes and antibiotics. The Bi2MoO6/Bi2S3 heterostructure not only has good degradation effect, but also shows better stability. This work opens up new avenues for designing highly-efficient catalysts, which is of importance for wastewater degradation and energy-saving applications.
ISSN:0264-1275
1873-4197
DOI:10.1016/j.matdes.2024.112942