Energy Filtering in Doping Modulated Nanoengineered Thermoelectric Materials: A Monte Carlo Simulation Approach

Materials Pub Date : 2024-07-16 DOI:10.3390/ma17143522
Pankaj Priyadarshi, V. Vargiamidis, N. Neophytou
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Abstract

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.
掺杂调制纳米工程热电材料中的能量过滤:蒙特卡罗模拟方法
利用蒙特卡洛电子传输模拟,结合自洽的泊松静电方程,我们探索了纳米工程材料的热电功率因数。这些材料由几个纳米级的高掺杂区和本征区交替组成。这种结构能够产生势阱和势垒,实现载流子能量过滤机制。我们的研究表明,与原始材料相比,通过精心设计纳米结构,可以显著提高热电功率因数。重要的是,这些增强不仅源于提高塞贝克系数的能量过滤效应,还源于利用阱和本征势垒区内的高能载流子来维持相对较高的电子电导率。这些发现可通过提高功率因数为新一代热电材料的设计和优化提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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