Zhao Zecheng, Yang Chuanlu, Cao Zanxia, Bian Yunqiang, Li Bingwen, Wei Yunwei
Shandong Key Laboratory of Biophysics, Institute of Biophysics, Dezhou University, Dezhou 253023, People's Republic of China.
School of Physics and Optoelectronics Engineering, Ludong University, Yantai 264025, People's Republic of China.
Spectrochim Acta A Mol Biomol Spectrosc. 2022 Oct 5;278:121359. doi: 10.1016/j.saa.2022.121359. Epub 2022 May 10.
Solar driven water splitting for hydrogen generation has been considered as an important method for collecting clean energy. Herein, based on first-principles calculations, we propose that ZnO/BlueP van der Waals heterostructure can realize overall water splitting reaction for hydrogen generation. Strikingly, the band-gap of 1.83 eV is appropriate, and band alignments straddle the water redox potentials, ensuring the occurrence of hydrogenevolutionreaction and oxygen evolution reaction. Charge density distribution and carrier mobility exhibit significant charge separation and transfer. Visible-light response is improved compared with those of the isolated monolayers. Moreover, hydrogenevolutionreaction is actually realized on the ZnO layer, while oxygen evolution reaction is implemented on the BlueP layer. Through the investigation of the adsorption and dissociation reactions of HO, we observe that two neighboring H*s prefer to combine to form H by overcoming a lowered energy barrier of 0.75 eV. Strain effect indicates that the lateral compressive strain of -4% to 0% and the vertical tensile strain of 0% to +6% can effectively tune band-gap and band alignments. The results indicate that ZnO/BlueP vdW heterostructure is probable highly efficient photoelectric material used for visible-light driven water splitting for hydrogen generation.
太阳能驱动水分解制氢被认为是收集清洁能源的一种重要方法。在此,基于第一性原理计算,我们提出ZnO/BlueP范德华异质结构可以实现用于制氢的全水分解反应。引人注目的是,其1.83 eV的带隙合适,且能带排列跨越水的氧化还原电位,确保析氢反应和析氧反应的发生。电荷密度分布和载流子迁移率表现出显著的电荷分离和转移。与孤立的单层相比,可见光响应得到了改善。此外,析氢反应实际上在ZnO层上实现,而析氧反应在BlueP层上进行。通过对HO的吸附和解离反应的研究,我们观察到两个相邻的H*倾向于结合形成H,克服了0.75 eV的降低的能垒。应变效应表明,-4%至0%的横向压缩应变和0%至+6%的纵向拉伸应变可以有效地调节带隙和能带排列。结果表明,ZnO/BlueP范德华异质结构可能是用于可见光驱动水分解制氢的高效光电材料。