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The effective photocatalysis and antibacterial properties of AgBr/AgVO3 composites under visible-light

机译:可见光下AgBr / AgVO3复合材料的有效光催化和抗菌性能

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With the discharge of large amount of organic pollutants and antibiotics into the water environment, the water cycle has been seriously polluted, and at the same time, various drug-resistant bacteria have emerged in succession, which poses a serious threat to human health. In recent years, photocatalytic nanomaterials have become a research hotspot in the antimicrobial area. In this study, AgBr/AgVO3 photocatalysts were prepared by a hydrothermal process and an in situ growth method. The composites were tightly connected by the (501) plane of AgVO3 and the (200) lattice plane of AgBr. The photocatalytic activity was tested by degrading Rhodamine B (RhB) solution under visible-light, and the result indicated that the photodegradation rate for RhB solution was 92.3% by the photocatalysis with 0.5AgBr/AgVO3 and the photocatalytic performance of 0.5AgBr/AgVO3 was improved compared to pure AgVO3 and AgBr. In addition, more than 99.997% of E. coli, S. aureus, and P. aeruginosa cells were killed by the photocatalysis with 0.5AgBr/AgVO3 within 30 min. These results demonstrated that the 0.5AgBr/AgVO3 heterojunction photocatalyst could be widely used in the treatment of environmental pollution and in the antibacterial field.
机译:随着大量有机污染物和抗生素进入水环境,水循环受到严重污染,同时,各种抗药性细菌连续出现,这对人类健康构成了严重的威胁。近年来,光催化纳米材料已成为抗微生物区域的研究热点。在该研究中,通过水热法制料和原位生长方法制备Agbr / Agvo3光催化剂。通过AGVO3的(501)平面和Agbr的(200)晶格平面紧密地连接复合材料。通过在可见光下降解罗丹明B(RHB)溶液来测试光催化活性,结果表明,通过0.5Agbr / AgVO3的光催化分解,测量rHB溶液的光降解速率为92.3%,0.5agbr / Agvo3的光催化性能是与纯AGVO3和AGBR相比改进。此外,超过99.997%的大肠杆菌,金黄色葡萄球菌和P.铜绿假单胞菌在30分钟内用0.5agbr / AgVO3的光催化杀死。这些结果表明,0.5AGBR / AGVO3异质结光催化剂可广泛用于环境污染和抗菌领域的治疗。

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    《RSC Advances》 |2019年第63期|共10页
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  • 正文语种 eng
  • 中图分类 化学;
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