Three-terminal semiconductor junction thermoelectric devices: improving performance
arXiv:1305.4612 · doi:10.1088/1367-2630/15/7/075021
Abstract
A three-terminal thermoelectric device based on a -- semiconductor junction is proposed, where the intrinsic region is mounted onto a, typically bosonic, thermal terminal. Remarkably, the figure of merit of the device is governed also by the energy distribution of the {\em bosons} participating in the transport processes, in addition to the electronic one. An enhanced figure of merit can be obtained when the relevant distribution is narrow and the electron-boson coupling is strong (such as for optical phonons). We study the conditions for which the figure of merit of the three-terminal junction can be greater than those of the usual thermoelectric devices made of the same material. A possible setup with a high figure of merit, based on BiTe/Si superlattices, is proposed.
Published in New Journal of Physics: Focus on Thermoelectric Effects in Nanostructures (open access). For published version, see http://dx.doi.org/10.1088/1367-2630/15/7/075021
References in corpus (5)
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Optimal energy quanta to current conversion
- Powerful and efficient energy harvester with resonant-tunneling quantum dots
- A double-dot quantum ratchet driven by an independently biased quantum point contact
- Cooling carbon nanotubes to the phononic ground state with constant electron current
Cited by in corpus (30)
- Fundamental aspects of steady-state conversion of heat to work at the nanoscale
- Quantum heat engine based on photon-assisted Cooper pair tunneling
- Phonon-thermoelectric transistors and rectifiers
- Experimental realization of a quantum dot energy harvester
- Enhanced performance of joint cooling and energy production
- Quantum heat engines based on electronic Mach-Zehnder interferometers
- Separation of heat and charge currents for boosted thermoelectric conversion
- Optimal quantum interference thermoelectric heat engine with edge states
- Quantum-dot circuit-QED thermoelectric diodes and transistors
- Thermodynamic bounds and general properties of optimal efficiency and power in linear responses
- Quantum Nernst engines
- Enhancing efficiency and power of quantum-dots resonant tunneling thermoelectrics in three-terminal geometry by cooperative effects
- Heat driven transport in serial double quantum dot devices
- Thermoelectrics with Coulomb coupled quantum dots
- Enhancing thermophotovoltaic performance using graphene-BN-InSb near-field heterostructures
- Enhancing Thermoelectric Performance Using Nonlinear Transport Effects
- Linear and Nonlinear Mesoscopic Thermoelectric Transport with Coupling to Heat Baths
- Efficiency and dissipation in a two-terminal thermoelectric junction, emphasizing small dissipation
- Near-field three-terminal thermoelectric heat engine
- Unconventional four-terminal thermoelectric transport due to inelastic transport: cooling by transverse current, transverse thermoelectric effect and Maxwell demon
- Multitask quantum thermal machines and cooperative effects
- Quantum coherent three-terminal thermoelectrics: maximum efficiency at given power output
- Inelastic thermoelectric transport and fluctuations in mesoscopic system
- Optimal efficiency and power and their trade-off in three-terminal quantum thermoelectric engines with two output electric currents
- Nanowire-based thermoelectric ratchet in the hopping regime
- Thermoelectric Cooperative Effect in Three-Terminal Elastic Transport through a Quantum Dot
- Staircase Quantum Dots Configuration in Nanowires for Optimized Thermoelectric Power
- Fundamental aspects of steady state heat to work conversion
- Quantum thermocouples: nonlocal conversion and control of heat in nanostructures
- Transport out of locally broken detailed balance