Near-field three-terminal thermoelectric heat engine
arXiv:1711.04215 · doi:10.1103/PhysRevB.97.125422
Abstract
We propose a near-field inelastic thermoelectric heat engine where quantum-dots are used to effectively rectify the charge flow of photo-carriers. The device converts near-field heat radiation into useful electrical power. Heat absorption and inelastic transport can be enhanced by introducing two continuous spectra separated by an energy gap. The thermoelectric transport properties of the heat engine are studied in the linear-response regime. Using a small band-gap semiconductor as the absorption material, we show that the device achieves very large thermopower and thermoelectric figure-of-merit, as well as considerable power-factor. By analyzing thermal-photo-carrier generation and conduction, we reveal that the Seebeck coefficient and the figure of merit have oscillatory dependence on the thickness of the vacuum gap. Meanwhile, the power-factor, the charge and thermal conductivity are significantly improved by near-field radiation. Conditions and guiding principles for powerful and efficient thermoelectric heat engines are discussed in details.
11 pages, 7 figures, submitted to Phys. Rev. B
References in corpus (16)
- Broadband super-Planckian thermal emission from hyperbolic metamaterials
- Optimal energy quanta to current conversion
- Near-field radiative heat transfer between a sphere and a substrate
- Powerful and efficient energy harvester with resonant-tunneling quantum dots
- Magnon-driven quantum-dot heat engine
- Enhanced performance of joint cooling and energy production
- Vibrational cooling and thermoelectric response of nanoelectromechanical systems
- Efficiency bounds on thermoelectric transport in magnetic fields: The role of inelastic processes
- Thermoelectricity near Anderson localization transitions
- Thermodynamic bounds and general properties of optimal efficiency and power in linear responses
- Single electron transistor strongly coupled to vibrations: Counting Statistics and Fluctuation Theorem
- Enhancing efficiency and power of quantum-dots resonant tunneling thermoelectrics in three-terminal geometry by cooperative effects
- Strained graphene based highly efficient quantum heat engine operating at maximum power
- Thermoelectric Cooperative Effect in Three-Terminal Elastic Transport through a Quantum Dot
- Using Activated Transport in Parallel Nanowires for Energy Harvesting and Hot Spot Cooling
- Thermoelectric cooling and thermal switching via the non-linear phonon Peltier effect
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