{"title":"First-principles study on the optoelectronic and photocatalytic properties of the C2h-Janus Al2XY(X/YS, Se and Te) monolayers","authors":"Gang Guo, Yong Zhou, Gencai Guo, Zhongxiang Xie","doi":"10.1016/j.mtchem.2024.101913","DOIUrl":null,"url":null,"abstract":"<p>Recently, two-dimensional (2D) new C<sub>2h</sub><span> phase of group III monochalcogenides have exhibited great potentials for applications in the field of photoelectric devices because of their outstanding optoelectronic properties. Here, we theoretically predict the C</span><sub>2h</sub><span> phase of aluminum monochalcogenide (C</span><sub>2h</sub>-Al<sub>2</sub>XY) (X/Y<img alt=\"double bond\" src=\"https://sdfestaticassets-us-east-1.sciencedirectassets.com/shared-assets/55/entities/dbnd.gif\" style=\"vertical-align:middle\"/>S, Se and Te; X≠Y) compounds with Janus structure via first-principles calculations. Janus C<sub>2h</sub>-Al<sub>2</sub>XY monolayers are found to be thermodynamically, dynamically, energetically, and mechanically stable. The entire Janus C<sub>2h</sub>-Al<sub>2</sub>XY monolayers exhibit semiconducting properties, with a band gap ranging from 2.25 to 2.57 eV, as calculated using the HSE06 method. The obvious anisotropic mechanical and optical characteristics are observed. All Janus C<sub>2h</sub>-Al<sub>2</sub>XY monolayers present high optical absorption in the ultraviolet and visible regions, suggesting that these monolayers have a favorable efficiency for absorbing solar light. These significant results imply that Janus C<sub>2h</sub>-Al<sub>2</sub>XY monolayers can be used in the fields such as nano-electronics and optoelectronics. Specifically, it has been found that the band edge position of Janus C<sub>2h</sub>-Al<sub>2</sub>SSe is capable of meeting the redox potential requirements for photocatalytic water splitting. Furthermore, biaxial strain can significantly adjust the band gap of the C<sub>2h</sub>-Al<sub>2</sub>SSe and enhance its visible light absorption. Most importantly, within the biaxial strain range of −6%–6 %, the band edge positions of Janus C<sub>2h</sub>-Al<sub>2</sub>SSe consistently satisfy the redox potentials required for photocatalytic water splitting. These findings indicate that the Janus C<sub>2h</sub>-Al<sub>2</sub>SSe monolayer is promising for photocatalytic water splitting due to its moderate band gap and suitable band edge positions as well as good absorption in the visible region.</p>","PeriodicalId":18353,"journal":{"name":"Materials Today Chemistry","volume":"28 1","pages":""},"PeriodicalIF":6.7000,"publicationDate":"2024-01-14","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Materials Today Chemistry","FirstCategoryId":"92","ListUrlMain":"https://doi.org/10.1016/j.mtchem.2024.101913","RegionNum":2,"RegionCategory":"化学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"CHEMISTRY, MULTIDISCIPLINARY","Score":null,"Total":0}
引用次数: 0
Abstract
Recently, two-dimensional (2D) new C2h phase of group III monochalcogenides have exhibited great potentials for applications in the field of photoelectric devices because of their outstanding optoelectronic properties. Here, we theoretically predict the C2h phase of aluminum monochalcogenide (C2h-Al2XY) (X/YS, Se and Te; X≠Y) compounds with Janus structure via first-principles calculations. Janus C2h-Al2XY monolayers are found to be thermodynamically, dynamically, energetically, and mechanically stable. The entire Janus C2h-Al2XY monolayers exhibit semiconducting properties, with a band gap ranging from 2.25 to 2.57 eV, as calculated using the HSE06 method. The obvious anisotropic mechanical and optical characteristics are observed. All Janus C2h-Al2XY monolayers present high optical absorption in the ultraviolet and visible regions, suggesting that these monolayers have a favorable efficiency for absorbing solar light. These significant results imply that Janus C2h-Al2XY monolayers can be used in the fields such as nano-electronics and optoelectronics. Specifically, it has been found that the band edge position of Janus C2h-Al2SSe is capable of meeting the redox potential requirements for photocatalytic water splitting. Furthermore, biaxial strain can significantly adjust the band gap of the C2h-Al2SSe and enhance its visible light absorption. Most importantly, within the biaxial strain range of −6%–6 %, the band edge positions of Janus C2h-Al2SSe consistently satisfy the redox potentials required for photocatalytic water splitting. These findings indicate that the Janus C2h-Al2SSe monolayer is promising for photocatalytic water splitting due to its moderate band gap and suitable band edge positions as well as good absorption in the visible region.
期刊介绍:
Materials Today Chemistry is a multi-disciplinary journal dedicated to all facets of materials chemistry.
This field represents one of the fastest-growing areas of science, involving the application of chemistry-based techniques to the study of materials. It encompasses materials synthesis and behavior, as well as the intricate relationships between material structure and properties at the atomic and molecular scale. Materials Today Chemistry serves as a high-impact platform for discussing research that propels the field forward through groundbreaking discoveries and innovative techniques.