4.7 Article

One-pot construction of unprecedented direct Z-scheme ZnS/GaOOH heterojunction for photodegradation of antibiotics

期刊

APPLIED SURFACE SCIENCE
卷 576, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.apsusc.2021.151742

关键词

Direct Z-scheme; Unprecedented ZnS; GaOOH heterojunction; One-pot construction; High redox capacity; Antibiotic photodegradation

资金

  1. National Natural Science Foundation of China (NSFC) [51834009, 51801151]
  2. Natural Science Foundation of Shaanxi Province [2021JQ-468, 2020JZ-47, 2020JM-451]
  3. Natural Science Foundation of Shaanxi Provincial Department of Education [21JP086]
  4. Postdoctoral Research Foun-dation of China [2020M683528, 2018M633643XB]
  5. Hundred Talent Program of Shaanxi Province
  6. Key Laboratory Project of Shaanxi Edu-cation Department [18JS070, 18JK0560, 17JS081]
  7. Shaanxi Province Science Fund for Distinguished Young Scholars [2018JC-027]
  8. Yunnan Chihong Zn AMP
  9. Ge Co., Ltd Nonferrous Metal Electrodeposition Technology Innovation Team of Yunnan Province [201905E160007]

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An unprecedented ZnS/GaOOH heterojunction structure was prepared through a one-pot hydrothermal process to improve charge separation for photocatalysis. The matchable ZnS/GaOOH presented optimal photocatalytic performance in degrading antibiotics under ultraviolet light. The efficient charge separation in the ZnS/GaOOH heterojunction was attributed to the superior photodegradation activities for both TC and RhB.
An unprecedented ZnS/GaOOH heterojunction structure is prepared through one-pot hydrothermal process to improve the charge separation for photocatalysis. The photocatalytic performance of the ZnS/GaOOH heterojunction photocatalyst is investigated by degrading antibiotics under ultraviolet light. The results show that the matchable ZnS/GaOOH presents optimal photocatalytic performance and can remove 86.4% of tetracycline (TC) in 150 min, which is higher than that of pure ZnS (60.4%) and pure GaOOH (61.9%). The ZnS/GaOOH can also remove ciprofloxacin (CIP), Levofloxacin (LF) and rhodamine B (RhB) effectively. In addition, ZnS/GaOOH heterojunction almost maintains its photocatalytic degradation activity of RhB at the initial level after 3th cycles. The morphologies, structures and optical properties of the photocatalysts are comprehensively characterized. The results show that the heterojunctions are formed by ZnS spheres attaching on GaOOH rods gradually with hydrothermal time increasing. However, when hydrothermal time excess to 3 h, oversize ZnS spheres will lead heterojunctions unmatchable. The optical and electrical properties characterizations reveal that the superior photodegradation activities for both TC and RhB of GaZn-3 to other GaZn-n and pure ZnS, GaOOH are ascribed to the efficient charge separation in matchable ZnS/GaOOH heterojunction. The photodeposition experiments and electron spin-resonance (ESR) results disclose ZnS/GaOOH heterojunction provides a direct Z-scheme mechanism of charge path for more efficient redox capacities. And the effective formation of .O2- and .OH together with photogenerated e- and h+ improve the degradation activity. This work provides an effective route to regulate a matchable and stable heterojunction, and will provoke the rational fabrication of direct Z-scheme mechanism heterojunction photocatalysts.

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