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Synthesis of Hierarchical ZnO/CdSSe Heterostructure Nanotrees
Published on: November 29, 2016
Tunable electronic structure, interfacial and optical properties of the tellurene/ZnSe van der Waals heterostructures
Hairui Bao1, Gen Li1, Yange Peng1
1College of Physics and Electromechanical Engineering, Jishou University, Jishou 416000, People's Republic of China.
Abstract:
Based on the first-principles calculations, we theoretically investigate the electronic structure, interfacial and optical properties of the tellurene/ZnSe (namelyα- andγ-Te/ZnSe) van der Waals heterostructures (vdWHs). In the most stable stacking pattern, theα-Te/ZnSe vdWH exhibits an indirect band gap of 0.41 eV and forms a type-I band alignment, while theγ-Te/ZnSe vdWH possesses ap-type Schottky contact with a favorable Schottky barrier height of 0.29 eV at the interface of theγ-Te and ZnSe monolayer. Interestingly, the transition from type-I band alignment to type-II and type-III one can be achieved in theα-Te/ZnSe vdWH by applying 3.0% and 6.7% biaxial compressive strain, respectively, while the transition fromp-type Schottky contact to Ohmic contact may be obtained in theγ-Te/ZnSe vdWH under 3.5% biaxial compressive strain. In final, the observed maximum optical absorption coefficients of theα- andγ-Te/ZnSe vdWHs is 23% and 20%, respectively, and the redshifted and/or blueshifted optical absorption peaks can be effectively modulated by the biaxial strain. The obtained results may provide a robust theoretical basis for designing of the tunable Schottky barrier and/or optoelectronic devices based on the tellurene/ZnSe vdWHs.
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