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Bibliographic Details
Main Authors: Priyadarshi, Pankaj, Vargiamidis, Vassilios, Neophytou, Neophytos
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2407.12574
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author Priyadarshi, Pankaj
Vargiamidis, Vassilios
Neophytou, Neophytos
author_facet Priyadarshi, Pankaj
Vargiamidis, Vassilios
Neophytou, Neophytos
contents Using Monte Carlo electronic transport simulations, coupled self-consistently with the Poisson equation for electrostatics, we explore the thermoelectric power factor of nanoengineered materials. These materials consist of alternating highly doped and intrinsic regions on the scale of several nanometers. This structure enables the creation of potential wells and barriers, implementing a mechanism for filtering carrier energy. Our study demonstrates that by carefully designing the nanostructure, we can significantly enhance its thermoelectric power factor compared to the original pristine material. Importantly, these enhancements stem not only from the energy filtering effect that boosts the Seebeck coefficient but also from the utilization of high-energy carriers within the wells and intrinsic barrier regions to maintain relatively high electronic conductivity. These findings can offer guidance for the design and optimization of new-generation thermoelectric materials through improvements in the power factor.
format Preprint
id arxiv_https___arxiv_org_abs_2407_12574
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Energy Filtering in Doping Modulated Nanoengineered Thermoelectric Materials: A Monte Carlo Simulation Approach
Priyadarshi, Pankaj
Vargiamidis, Vassilios
Neophytou, Neophytos
Materials Science
Applied Physics
Using Monte Carlo electronic transport simulations, coupled self-consistently with the Poisson equation for electrostatics, we explore the thermoelectric power factor of nanoengineered materials. These materials consist of alternating highly doped and intrinsic regions on the scale of several nanometers. This structure enables the creation of potential wells and barriers, implementing a mechanism for filtering carrier energy. Our study demonstrates that by carefully designing the nanostructure, we can significantly enhance its thermoelectric power factor compared to the original pristine material. Importantly, these enhancements stem not only from the energy filtering effect that boosts the Seebeck coefficient but also from the utilization of high-energy carriers within the wells and intrinsic barrier regions to maintain relatively high electronic conductivity. These findings can offer guidance for the design and optimization of new-generation thermoelectric materials through improvements in the power factor.
title Energy Filtering in Doping Modulated Nanoengineered Thermoelectric Materials: A Monte Carlo Simulation Approach
topic Materials Science
Applied Physics
url https://arxiv.org/abs/2407.12574