Literature DB >> 35133142

Interface-Induced Seebeck Effect in PtSe2/PtSe2 van der Waals Homostructures.

Won-Yong Lee1, Min-Sung Kang1, Gil-Sung Kim1, Jae Won Choi1, No-Won Park1, Yumin Sim1, Yun-Ho Kim1, Maeng-Je Seong1, Young-Gui Yoon1, Eiji Saitoh2, Sang-Kwon Lee1.   

Abstract

The Seebeck effect refers to the production of an electric voltage when different temperatures are applied on a conductor, and the corresponding voltage-production efficiency is represented by the Seebeck coefficient. We report a Seebeck effect: thermal generation of driving voltage from the heat flowing in a thin PtSe2/PtSe2 van der Waals homostructure at the interface. We refer to the effect as the interface-induced Seebeck effect. By exploiting this effect by directly attaching multilayered PtSe2 over high-resistance PtSe2 thin films as a hybridized single structure, we obtained the highly challenging in-plane Seebeck coefficient of the PtSe2 films that exhibit extremely high resistances. This direct attachment further enhanced the in-plane thermal Seebeck coefficients of the PtSe2/PtSe2 van der Waals homostructure on sapphire substrates. Consequently, we successfully enhanced the in-plane Seebeck coefficients for the PtSe2 (10 nm)/PtSe2 (2 nm) homostructure approximately 42% compared to that of a pure PtSe2 (10 nm) layer at 300 K. These findings represent a significant achievement in understanding the interface-induced Seebeck effect and provide an effective strategy for promising large-area thermoelectric energy harvesting devices using two-dimensional transition metal dichalcogenide materials, which are ideal thermoelectric platforms with high figures of merit.

Entities:  

Keywords:  homostructure and heterostructure; hot carrier injection; in-plane Seebeck effect; interface-induced Seebeck effect; platinum diselenide; transition metal dichalcogenide; van der Waals

Year:  2022        PMID: 35133142     DOI: 10.1021/acsnano.2c00359

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  Phase Change Material (PCM) Composite Supported by 3D Cross-Linked Porous Graphene Aerogel.

Authors:  Chengbin Yu; Young Seok Song
Journal:  Materials (Basel)       Date:  2022-06-28       Impact factor: 3.748

  1 in total

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