Thermoelectric Characteristics of A Single-Crystalline Topological Insulator Bi2Se3 Nanowire

Author:

Dedi ,Lee Ping-Chung,Wei Pai-Chun,Chen Yang-YuanORCID

Abstract

The discovery of topological insulators (TIs) has motivated detailed studies on their physical properties, especially on their novel surface states via strong spin–orbit interactions. However, surface-state-related thermoelectric properties are rarely reported, likely because of the involvement of their bulk-dominating contribution. In this work, we report thermoelectric studies on a TI bismuth selenide (Bi2Se3) nanowire (NW) that exhibit a larger surface/volume ratio. Uniform single-crystalline TI Bi2Se3 NWs were successfully synthesized using a stress-induced growth method. To achieve the study of the thermoelectric properties of a nanowire (NW), including electrical conductivity (σ), Seebeck coefficient (S), and thermal conductivity (κ), a special platform for simultaneously performing all measurements on a single wire was designed. The properties of σ, S, and κ of a 200 nm NW that was well precharacterized using transmission electron microscope (TEM) measurements were determined using the four-probe method, the two-probe EMF across ∇T measurement, and the 3ω technique, respectively. The integrated TE properties represented by the figure of merit ZT (S2σT/κ) were found to be in good agreement with a theoretical study of Bi2Se3 NW.

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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1. Thermoelectric transport properties of surface states in three-dimensional topological insulator film;Physica Scripta;2024-06-11

2. Effect of bending deformation on suspended topological insulator nanowires: Towards a topological insulator based NEM switch;Sensors and Actuators A: Physical;2024-06

3. Dispersion corrected elastic, electronic and thermoelectric properties of Bi2Se3;Computational Materials Science;2024-05

4. Formation of Bismuth Nanoparticles on Nanoporous Substrates;Journal of Surface Investigation: X-ray, Synchrotron and Neutron Techniques;2024-04

5. Formation of bismuth nanoparticles on nanoporous substrates;Поверхность. Рентгеновские, синхротронные и нейтронные исследования;2024-03-15

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