Department of Materials Science and Nanoengineering, Rice University , Houston, Texas 77005, United States.
Department of Mechanical Engineering, The University of Texas at Austin , Austin, Texas 78712, United States.
ACS Nano. 2017 Aug 22;11(8):8192-8198. doi: 10.1021/acsnano.7b03186. Epub 2017 Aug 9.
The crystal configuration of sandwiched S-Mo-Se structure (Janus SMoSe) at the monolayer limit has been synthesized and carefully characterized in this work. By controlled sulfurization of monolayer MoSe, the top layer of selenium atoms is substituted by sulfur atoms, while the bottom selenium layer remains intact. The structure of this material is systematically investigated by Raman, photoluminescence, transmission electron microscopy, and X-ray photoelectron spectroscopy and confirmed by time-of-flight secondary ion mass spectrometry. Density functional theory (DFT) calculations are performed to better understand the Raman vibration modes and electronic structures of the Janus SMoSe monolayer, which are found to correlate well with corresponding experimental results. Finally, high basal plane hydrogen evolution reaction activity is discovered for the Janus monolayer, and DFT calculation implies that the activity originates from the synergistic effect of the intrinsic defects and structural strain inherent in the Janus structure.
夹心 S-Mo-Se 结构(Janus SMoSe)的单层极限晶体结构已在本工作中被合成并仔细表征。通过单层 MoSe 的可控硫化,硒原子的顶层被硫原子取代,而底层的硒层保持完整。通过拉曼、光致发光、透射电子显微镜和 X 射线光电子能谱对该材料的结构进行了系统研究,并通过飞行时间二次离子质谱得到了证实。密度泛函理论(DFT)计算用于更好地理解 Janus SMoSe 单层的拉曼振动模式和电子结构,发现与相应的实验结果吻合较好。最后,Janus 单层表现出很高的基面析氢反应活性,DFT 计算表明这种活性源于 Janus 结构固有的本征缺陷和结构应变的协同效应。