Department of Fundamental Courses, Jinling Institute of Technology, Nanjing, Jiangsu 211169, China.
Department of Physics, Zunyi Normal College, Zunyi, Guizhou 563002, China.
Phys Chem Chem Phys. 2018 May 16;20(19):13394-13399. doi: 10.1039/c8cp00808f.
Previous investigations [H. L. Zhuang and R. G. Hennig, J. Phys. Chem. C, 2013, 117, 20440-20445; J. Kang, S. Tongay, J. Zhou, J. Li and J. Wu, Appl. Phys. Lett., 2013, 102, 012111] demonstrated that molybdenum disulfide (MoS2) is a potential photocatalyst for water splitting. However, the photogenerated electron-hole pairs in MoS2 remain in the same spatial regions, resulting in a high rate of recombination. Using first-principles calculations, we designed a MoS2-based heterostructure by stacking MoS2 on two-dimensional zinc oxide (ZnO) and investigated its structural, electronic, and optical properties. The interaction at the MoS2/ZnO interface was found to be dominated by van der Waals (vdW) forces. The energy levels of both water oxidation and reduction lie within the bandgap of the MoS2/ZnO vdW heterostructure, which guarantee their occurrence for water splitting. Moreover, a type-II band alignment and a large built-in electric field are formed at the MoS2/ZnO interface, which ensure the enhanced separation of the photogenerated electron-hole pairs. In addition, strong optical absorption in the visible region was also found in the MoS2/ZnO vdW heterostructure, indicating that it has potential for application in photovoltaic and photocatalytic devices.
先前的研究[H. L. Zhuang 和 R. G. Hennig, J. Phys. Chem. C, 2013, 117, 20440-20445; J. Kang, S. Tongay, J. Zhou, J. Li 和 J. Wu, Appl. Phys. Lett., 2013, 102, 012111]表明二硫化钼 (MoS2) 是一种潜在的水分解光催化剂。然而,MoS2 中的光生电子-空穴对仍处于同一空间区域,导致复合速率很高。我们通过使用第一性原理计算,设计了一种由 MoS2 堆叠在二维氧化锌 (ZnO) 上的 MoS2 基异质结构,并研究了其结构、电子和光学性质。发现 MoS2/ZnO 界面的相互作用主要由范德华 (vdW) 力主导。水氧化和还原的能级都位于 MoS2/ZnO vdW 异质结的能带隙内,保证了水分解的发生。此外,在 MoS2/ZnO 界面形成了 II 型能带排列和大的内置电场,保证了光生电子-空穴对的有效分离。此外,在 MoS2/ZnO vdW 异质结构中还发现了可见光区的强光学吸收,表明其在光电器件和光催化器件中有潜在的应用。