1. Designing Two-Dimensional Dirac Heterointerfaces of Few-Layer Graphene and Tetradymite-Type Sb2Te3 for Thermoelectric Applications
- Author
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Chihun In, Woosun Jang, Jiwoo Lee, Hyunyong Choi, and Aloysius Soon
- Subjects
Materials science ,Condensed matter physics ,Graphene ,Tetradymite ,02 engineering and technology ,Electronic structure ,engineering.material ,021001 nanoscience & nanotechnology ,Thermoelectric materials ,01 natural sciences ,Boltzmann equation ,law.invention ,symbols.namesake ,law ,0103 physical sciences ,Thermoelectric effect ,engineering ,symbols ,Fermi–Dirac statistics ,General Materials Science ,Density functional theory ,010306 general physics ,0210 nano-technology - Abstract
Despite the ubiquitous nature of the Peltier effect in low-dimensional thermoelectric devices, the influence of finite temperature on the electronic structure and transport in the Dirac heterointerfaces of the few-layer graphene and layered tetradymite, Sb2Te3 (which coincidently have excellent thermoelectric properties) are not well understood. In this work, using the first-principles density-functional theory calculations, we investigate the detailed atomic and electronic structure of these Dirac heterointerfaces of graphene and Sb2Te3 and further re-examine the effect of finite temperature on the electronic band structures using a phenomenological temperature-broadening model based on Fermi–Dirac statistics. We then proceed to understand the underlying charge redistribution process in this Dirac heterointerfaces and through solving the Boltzmann transport equation, we present the theoretical evidence of electron–hole asymmetry in its electrical conductivity as a consequence of this charge redistributio...
- Published
- 2017
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