Literature DB >> 30480455

Experimental Identification of Critical Condition for Drastically Enhancing Thermoelectric Power Factor of Two-Dimensional Layered Materials.

Junwen Zeng1,2, Xin He3, Shi-Jun Liang1, Erfu Liu1, Yuanhui Sun3, Chen Pan1, Yu Wang1, Tianjun Cao1, Xiaowei Liu1, Chenyu Wang1, Lili Zhang1, Shengnan Yan1, Guangxu Su1, Zhenlin Wang1, Kenji Watanabe4, Takashi Taniguchi4, David J Singh3,5, Lijun Zhang3, Feng Miao1.   

Abstract

Nanostructuring is an extremely promising path to high-performance thermoelectrics. Favorable improvements in thermal conductivity are attainable in many material systems, and theoretical work points to large improvements in electronic properties. However, realization of the electronic benefits in practical materials has been elusive experimentally. A key challenge is that experimental identification of the quantum confinement length, below which the thermoelectric power factor is significantly enhanced, remains elusive due to lack of simultaneous control of size and carrier density. Here we investigate gate-tunable and temperature-dependent thermoelectric transport in γ-phase indium selenide (γ-InSe, n-type semiconductor) samples with thickness varying from 7 to 29 nm. This allows us to properly map out dimension and doping space. Combining theoretical and experimental studies, we reveal that the sharper pre-edge of the conduction-band density of states arising from quantum confinement gives rise to an enhancement of the Seebeck coefficient and the power factor in the thinner InSe samples. Most importantly, we experimentally identify the role of the competition between quantum confinement length and thermal de Broglie wavelength in the enhancement of power factor. Our results provide an important and general experimental guideline for optimizing the power factor and improving the thermoelectric performance of two-dimensional layered semiconductors.

Entities:  

Keywords:  InSe; Two-dimensional semiconductors; quantum confinement; thermal de Broglie wavelength; thermoelectric

Year:  2018        PMID: 30480455     DOI: 10.1021/acs.nanolett.8b03026

Source DB:  PubMed          Journal:  Nano Lett        ISSN: 1530-6984            Impact factor:   11.189


  2 in total

1.  Thermoelectric Performance of Two-Dimensional AlX (X = S, Se, Te): A First-Principles-Based Transport Study.

Authors:  Xiaorui Chen; Yuhong Huang; Jing Liu; Hongkuan Yuan; Hong Chen
Journal:  ACS Omega       Date:  2019-10-17

2.  Thermoelectric characteristics of X[Formula: see text]YH[Formula: see text] monolayers (X=Si, Ge; Y=P, As, Sb, Bi): a first-principles study.

Authors:  Mohammad Ali Mohebpour; Shobair Mohammadi Mozvashi; Sahar Izadi Vishkayi; Meysam Bagheri Tagani
Journal:  Sci Rep       Date:  2021-12-13       Impact factor: 4.379

  2 in total

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