Optimizing Thermoelectric Power Factor by Means of a Potential Barrier
arXiv:1307.8156 · doi:10.1063/1.4816792
Abstract
Large efforts in improving thermoelectric energy conversion are devoted to energy filtering by nanometer size potential barriers. In this work we perform an analysis and optimization of such barriers for improved energy filtering. We merge semiclassical with quantum mechanical simulations to capture tunneling and reflections due to the barrier, and analyze the influence of the width W, the height Vb, and the shape of the barrier, and the position of the Fermi level (EF) above the band edge, ηF. We show that for an optimized design, approx. 40 per cent improvement in the thermoelectric power factor can be achieved if the following conditions are met: ηF is large; the different of Vb from EF is somewhat higher but comparable to kBT; and W is large enough to suppress tunneling. Finally, we show that a smooth energy barrier is beneficial compared to a sharp (square) barrier for increasing the thermoelectric power factor.
19 pages, 5 figures
References in corpus (2)
Cited by in corpus (11)
- Impact of the scattering physics on the power factor of complex thermoelectric materials
- On the effectiveness of the thermoelectric energy filtering mechanism in low-dimensional superlattices and nano-composites
- The influence of non-idealities on the thermoelectric power factor of nanostructured superlattices
- Hierarchically nanostructured thermoelectric materials: Challenges and opportunities for improved power factors
- Incoherent scattering can favorably influence energy filtering in nanostructured thermoelectrics
- Thermoelectric power factor of nanocomposite materials from two-dimensional quantum transport simulations
- Theoretical model for the Seebeck coefficient in superlattice materials with energy relaxation
- Modelling thermoelectric performance in nanoporous nanocrystalline silicon
- Electronic Transport and Thermopower in 2D and 3D Heterostructures--A Theory Perspective
- Energy Filtering in Doping Modulated Nanoengineered Thermoelectric Materials: A Monte Carlo Simulation Approach
- A realistic non-local heat engine based on Coulomb coupled systems