4.7 Article

Effects of Bi and S co-doping on the enhanced photoelectric performance of ZnO: Theoretical and experimental investigations

期刊

JOURNAL OF ALLOYS AND COMPOUNDS
卷 872, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2021.159648

关键词

ZnO; Bi-S co-doping; DFT calculations; Oxygen defects; Photoelectric performance

资金

  1. National Natural Science Foundation of China [51703151]
  2. Science and Technology Innovation Project of Shanxi Province Colleges and Universities [2020L0068]

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(English Summary:) Enhanced photoelectric performance of (Bi, S) co-doping ZnO was explored by combining density functional theory (DFT) calculations and experimental measurements. The presence of Bi and S impurities was found to significantly affect oxygen defects in the crystal structure, resulting in band gap narrowing. Introducing Bi and S can improve the separation rates of photogenerated carriers, enhancing the performance of photoelectrocatalysis.
The enhanced photoelectric performance of (Bi, S) co-doping ZnO is explored by combining the density functional theory (DFT) calculations with experimental measurements. The crystal structures, formation energies, electronic properties and relative effective mass of photogenerated electrons and holes of pure and (Bi, S) co-doped ZnO are investigated by DFT calculations. Results indicate that Bi/S co-doping can generate impurity states and shift the conduction band into the lower energy region, causing the decrease in band gap. Relative effective mass show that the separation rates of photogenerated carriers are enhanced after modification. Moreover, experimental measurements are carried out on the basis of the above theoretical analysis. Pure and Bi/S co-doped ZnO samples with different doping ratios are synthesized and characterized. The results confirm that the presence of (Bi, S) has major effects on oxygen defects in crystal structure. XPS, UV-vis and PL studies evidence the roles of these oxygen defects on band gap narrowing for 2% ZnO samples. As expected, 2% doping sample has the highest photocurrent value (23.58 mu A cm(-2), nearly 4.7 times higher than pure ZnO) and the smallest Nyquist semicircle diameter. This work will provide some new insights into the design of high performance photoelectrocatalysis materials. (c) 2021 Elsevier B.V. All rights reserved.

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