Matches in SemOpenAlex for { <https://semopenalex.org/work/W4311392368> ?p ?o ?g. }
- W4311392368 endingPage "8921" @default.
- W4311392368 startingPage "8921" @default.
- W4311392368 abstract "One of the topical problems of materials science is the production of van der Waals heterostructures with the desired properties. Borophene is considered to be among the promising 2D materials for the design of van der Waals heterostructures and their application in electronic nanodevices. In this paper, we considered new atomic configurations of van der Waals heterostructures for a potential application in nano- and optoelectronics: (1) a configuration based on buckled triangular borophene and gallium nitride (GaN) 2D monolayers; and (2) a configuration based on buckled triangular borophene and zinc oxide (ZnO) 2D monolayers. The influence of mechanical deformations on the electronic structure of borophene/GaN and borophene/ZnO van der Waals heterostructures are studied using the first-principles calculations based on density functional theory (DFT) within a double zeta plus polarization (DZP) basis set. Four types of deformation are considered: uniaxial (along the Y axis)/biaxial (along the X and Y axes) stretching and uniaxial (along the Y axis)/biaxial (along the X and Y axes) compression. The main objective of this study is to identify the most effective types of deformation from the standpoint of tuning the electronic properties of the material, namely the possibility of opening the energy gap in the band structure. For each case of deformation, the band structure and density of the electronic states (DOS) are calculated. It is found that the borophene/GaN heterostructure is more sensitive to axial compression while the borophene/ZnO heterostructure is more sensitive to axial stretching. The energy gap appears in the band structure of borophene/GaN heterostructure at uniaxial compression by 14% (gap size of 0.028 eV) and at biaxial compression by 4% (gap size of 0.018 eV). The energy gap appears in the band structure of a borophene/ZnO heterostructure at uniaxial stretching by 10% (gap size 0.063 eV) and at biaxial compression by 6% (0.012 eV). It is predicted that similar heterostructures with an emerging energy gap can be used for various nano- and optoelectronic applications, including Schottky barrier photodetectors." @default.
- W4311392368 created "2022-12-26" @default.
- W4311392368 creator A5010966183 @default.
- W4311392368 creator A5029662575 @default.
- W4311392368 creator A5060492710 @default.
- W4311392368 creator A5061906410 @default.
- W4311392368 date "2022-12-13" @default.
- W4311392368 modified "2023-09-26" @default.
- W4311392368 title "Band Gap Opening in Borophene/GaN and Borophene/ZnO Van der Waals Heterostructures Using Axial Deformation: First-Principles Study" @default.
- W4311392368 cites W1998866028 @default.
- W4311392368 cites W2013183108 @default.
- W4311392368 cites W2014677133 @default.
- W4311392368 cites W2031210986 @default.
- W4311392368 cites W2036113194 @default.
- W4311392368 cites W2039211361 @default.
- W4311392368 cites W2044591029 @default.
- W4311392368 cites W2096421416 @default.
- W4311392368 cites W2104198521 @default.
- W4311392368 cites W2107432007 @default.
- W4311392368 cites W2141704677 @default.
- W4311392368 cites W2206837932 @default.
- W4311392368 cites W2332891310 @default.
- W4311392368 cites W2475096219 @default.
- W4311392368 cites W2498106012 @default.
- W4311392368 cites W2570166109 @default.
- W4311392368 cites W2601606244 @default.
- W4311392368 cites W2737914494 @default.
- W4311392368 cites W2766427879 @default.
- W4311392368 cites W2790991587 @default.
- W4311392368 cites W2793289581 @default.
- W4311392368 cites W2805454048 @default.
- W4311392368 cites W2942802086 @default.
- W4311392368 cites W2970856279 @default.
- W4311392368 cites W2979930711 @default.
- W4311392368 cites W2979982537 @default.
- W4311392368 cites W2990232896 @default.
- W4311392368 cites W2991130838 @default.
- W4311392368 cites W3039913946 @default.
- W4311392368 cites W3043558820 @default.
- W4311392368 cites W3093662804 @default.
- W4311392368 cites W3106841015 @default.
- W4311392368 cites W3113716243 @default.
- W4311392368 cites W3114640633 @default.
- W4311392368 cites W3126881462 @default.
- W4311392368 cites W3127605458 @default.
- W4311392368 cites W3193535164 @default.
- W4311392368 cites W3200721569 @default.
- W4311392368 cites W3206606417 @default.
- W4311392368 cites W3208267590 @default.
- W4311392368 cites W3208969051 @default.
- W4311392368 cites W4220670166 @default.
- W4311392368 cites W4225011297 @default.
- W4311392368 cites W4281897783 @default.
- W4311392368 cites W4282915181 @default.
- W4311392368 cites W4283748698 @default.
- W4311392368 doi "https://doi.org/10.3390/ma15248921" @default.
- W4311392368 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/36556727" @default.
- W4311392368 hasPublicationYear "2022" @default.
- W4311392368 type Work @default.
- W4311392368 citedByCount "1" @default.
- W4311392368 countsByYear W43113923682023 @default.
- W4311392368 crossrefType "journal-article" @default.
- W4311392368 hasAuthorship W4311392368A5010966183 @default.
- W4311392368 hasAuthorship W4311392368A5029662575 @default.
- W4311392368 hasAuthorship W4311392368A5060492710 @default.
- W4311392368 hasAuthorship W4311392368A5061906410 @default.
- W4311392368 hasBestOaLocation W43113923681 @default.
- W4311392368 hasConcept C121332964 @default.
- W4311392368 hasConcept C125469278 @default.
- W4311392368 hasConcept C126061179 @default.
- W4311392368 hasConcept C147597530 @default.
- W4311392368 hasConcept C152365726 @default.
- W4311392368 hasConcept C159985019 @default.
- W4311392368 hasConcept C171250308 @default.
- W4311392368 hasConcept C181966813 @default.
- W4311392368 hasConcept C185592680 @default.
- W4311392368 hasConcept C192562407 @default.
- W4311392368 hasConcept C204366326 @default.
- W4311392368 hasConcept C26873012 @default.
- W4311392368 hasConcept C2779029100 @default.
- W4311392368 hasConcept C2780243435 @default.
- W4311392368 hasConcept C32909587 @default.
- W4311392368 hasConcept C49040817 @default.
- W4311392368 hasConcept C62520636 @default.
- W4311392368 hasConcept C7070889 @default.
- W4311392368 hasConcept C79794668 @default.
- W4311392368 hasConcept C86025842 @default.
- W4311392368 hasConceptScore W4311392368C121332964 @default.
- W4311392368 hasConceptScore W4311392368C125469278 @default.
- W4311392368 hasConceptScore W4311392368C126061179 @default.
- W4311392368 hasConceptScore W4311392368C147597530 @default.
- W4311392368 hasConceptScore W4311392368C152365726 @default.
- W4311392368 hasConceptScore W4311392368C159985019 @default.
- W4311392368 hasConceptScore W4311392368C171250308 @default.
- W4311392368 hasConceptScore W4311392368C181966813 @default.
- W4311392368 hasConceptScore W4311392368C185592680 @default.
- W4311392368 hasConceptScore W4311392368C192562407 @default.
- W4311392368 hasConceptScore W4311392368C204366326 @default.