Quantum effects in the thermoelectric power factor of low-dimensional semiconductors
arXiv:1604.04353 · doi:10.1103/PhysRevLett.117.036602
Abstract
We theoretically investigate the interplay between the confinement length and the thermal de Broglie wavelength to optimize the thermoelectric power factor of semiconducting materials. An analytical formula for the power factor is derived based on the one-band model assuming nondegenerate semiconductors to describe quantum effects on the power factor of the low dimensional semiconductors. The power factor is enhanced for one- and two-dimensional semiconductors when is smaller than of the semiconductors. In this case, the low-dimensional semiconductors having smaller than their will give a better thermoelectric performance compared to their bulk counterpart. On the other hand, when is larger than , bulk semiconductors may give a higher power factor compared to the lower dimensional ones.
5 pages, 3 figures
Cited by in corpus (18)
- Two-dimensional InSe as a potential thermoelectric material
- Experimental identification of critical condition for drastically enhancing thermoelectric power factor of two-dimensional layered materials
- New two-dimensional phase of tin chalcogenides: candidates for high-performance thermoelectric materials
- Thermoelectric power factor limit of a 1D nanowire
- Manifestation of the thermoelectric properties in Ge-based halide perovskites
- Optimal band gap for improved thermoelectric performance of two-dimensional Dirac materials
- Thermoelectric phase diagram of the SrTiO3-SrNbO3 solid solution system
- Enhanced thermopower and low thermal conductivity in p-type polycrystalline ZrTe5
- Thermoelectric properties of armchair phosphorene nanoribbons in the presence of vacancy-induced impurity band
- Lateral transition metal dichalcogenide heterostructures for high efficiency thermoelectric devices
- Enhanced thermoelectric performance by van Hove singularities in the density of states of type-II nodal-line semimetals
- A comparative study of the thermoelectric performance of graphene-like BX (X= P, As, Sb) monolayers
- Spin-tunable thermoelectric performance in monolayer chromium pnictides
- Universal curve of optimum thermoelectric figures of merit for bulk and low-dimensional semiconductors
- Three-terminal interface as a thermoelectric generator beyond Seebeck effect
- Enhanced thermoelectric efficiency of zigzag bilayer phosphorene nanoribbon; edge states engineering
- Magneto-Seebeck coefficient of Fermi-liquid in three-dimensional Dirac/Weyl semimetal
- Optimal half-metal band structure for large thermoelectric performance