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用于高效光伏应用的与二硫化钼结合的双金属二硫属化物:一项密度泛函理论研究

Janus transition metal dichalcogenides in combination with MoS for high-efficiency photovoltaic applications: a DFT study.

作者信息

Beshir Birhan Tesfaye, Obodo Kingsley O, Asres Georgies A

机构信息

Center for Materials Engineering, Addis Ababa Institute of Technology, School of Multi-disciplinary Engineering Addis Ababa 1000 Ethiopia

Center for Dimensional Metrology Department, Scientific Metrology Directorate, National Metrology Institute of Ethiopia 5722 Addis Ababa Ethiopia.

出版信息

RSC Adv. 2022 May 6;12(22):13749-13755. doi: 10.1039/d2ra00775d. eCollection 2022 May 5.

Abstract

Exotic features of two-dimensional materials have been demonstrated, making them particularly appealing for both photocatalytic and photovoltaic applications. van der Waals corrected density functional theory calculations were performed on AAII-Se MoSSe, AAII-Te MoSTe, and AAII-Se WSSe heterostructures in this study. Our findings reveal that the heterostructures have high stability due to the tiny lattice mismatch and binding energy, which is extremely favorable for epitaxial growth of these heterostructures. According to the electronic band gap calculation, AAII-Se MoSSe and AAII-Se WSSe are semiconducting materials, while AAII-Te MoSTe has metallic properties. Interestingly, all three heterostructures have type II band gap alignment, which is advantageous for photovoltaic and photocatalytic applications. Furthermore, it was discovered that AAII-Se MoSSe and AAII-Se WSSe heterostructures exhibit high power conversion efficiency of up to 12.15% and 9.37%, respectively. Based on these intriguing features, the two heterostructures are excellent prospects for photovoltaic applications. The heterostructures have no appropriate band edge sites for overall water splitting at pH = 0, but they are good for the oxygen evolution process. It is feasible to alter the position of the band edges using strain resulting in improved overall water splitting by the heterostructures.

摘要

二维材料的奇异特性已得到证实,这使得它们在光催化和光伏应用方面极具吸引力。本研究对AAII - Se MoSSe、AAII - Te MoSTe和AAII - Se WSSe异质结构进行了范德华修正密度泛函理论计算。我们的研究结果表明,由于微小的晶格失配和结合能,这些异质结构具有高稳定性,这对这些异质结构的外延生长极为有利。根据电子带隙计算,AAII - Se MoSSe和AAII - Se WSSe是半导体材料,而AAII - Te MoSTe具有金属特性。有趣的是,所有三种异质结构都具有II型带隙排列,这对光伏和光催化应用有利。此外,还发现AAII - Se MoSSe和AAII - Se WSSe异质结构分别表现出高达12.15%和9.37%的高功率转换效率。基于这些有趣的特性,这两种异质结构在光伏应用方面具有极好的前景。这些异质结构在pH = 0时没有适合整体水分解的合适带边位点,但它们有利于析氧过程。利用应变改变带边位置从而改善异质结构的整体水分解是可行的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6272/9074779/6b43cae22804/d2ra00775d-f1.jpg

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