Temperature-Driven Abrupt Changes in the Electronic Structure of 2D Si2Te3: A First-Principles Study
Jaeseon Kim1, June Ho Lee1, Youngjun Park1
1Department of Materials Science and Engineering (MSE), and Division of Advanced Materials Science (AMS), Pohang University of Science and Technology (POSTECH), Pohang 37673, Republic of Korea.
Abstract:
Si2Te3 has emerged as a promising two-dimensional material due to its compatibility with existing silicon-based semiconductor processes, its intrinsic p-type conductivity, which is rare among 2D materials, and its potential for diverse applications. Recently, experimental studies have suggested that Si2Te3 exhibits temperature-dependent changes in its optical and electrical properties. Although these observations are potentially linked to changes in Si-Si dimer orientations, the underlying mechanism remains unclear. Here, we employ first-principles density functional theory (DFT) calculations to investigate the impact of Si-Si dimer orientations on the electronic structure of Si2Te3. Our findings reveal that Si-Si dimer configurations can induce transitions between direct and indirect band gaps and significantly alter the hole effective mass. These results suggest a direct correlation between the orientations of Si-Si dimers and the resulting optical and electrical properties of Si2Te3, providing new insights into the fundamental properties of Si2Te3 and guiding future applications.
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