Ta3N5/CdS Core–Shell S-scheme Heterojunction Nanofibers for Efficient Photocatalytic Removal of Antibiotic Tetracycline and Cr(VI): Performance and Mechanism Insights
Impact in
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- Advanced Fiber Materials
In The Last Decade
doi.org/10.1007/s42765-022-00253-5 →Countries where authors are citing Ta3N5/CdS Core–Shell S-scheme Heterojunction Nanofibers for Efficient Photocatalytic Removal of Antibiotic Tetracycline and Cr(VI): Performance and Mechanism Insights
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Fields of papers citing Ta3N5/CdS Core–Shell S-scheme Heterojunction Nanofibers for Efficient Photocatalytic Removal of Antibiotic Tetracycline and Cr(VI): Performance and Mechanism Insights
This network shows the impact of Ta3N5/CdS Core–Shell S-scheme Heterojunction Nanofibers for Efficient Photocatalytic Removal of Antibiotic Tetracycline and Cr(VI): Performance and Mechanism Insights. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the Ta3N5/CdS Core–Shell S-scheme Heterojunction Nanofibers for Efficient Photocatalytic Removal of Antibiotic Tetracycline and Cr(VI): Performance and Mechanism Insights.
About Ta3N5/CdS Core–Shell S-scheme Heterojunction Nanofibers for Efficient Photocatalytic Removal of Antibiotic Tetracycline and Cr(VI): Performance and Mechanism Insights
This paper, published in 2023, received 396 indexed citations . Written by Shijie Li, Mingjie Cai, Chunchun Wang and Yanping Liu covering the research area of Renewable Energy, Sustainability and the Environment and Materials Chemistry. It is primarily cited by scholars working on Renewable Energy, Sustainability and the Environment (340 citations), Materials Chemistry (283 citations), Electrical and Electronic Engineering (150 citations), Electronic, Optical and Magnetic Materials (36 citations) and Water Science and Technology (32 citations). Published in Advanced Fiber Materials.
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This paper is also available at doi.org/10.1007/s42765-022-00253-5.