Solid‐State Electrochemical Thermal Transistors

Author:

Yang Qian1ORCID,Cho Hai Jun2ORCID,Bian Zhiping1ORCID,Yoshimura Mitsuki1,Lee Joonhyuk3ORCID,Jeen Hyoungjeen3ORCID,Lin Jinghuang4,Wei Jiake4,Feng Bin4ORCID,Ikuhara Yuichi4ORCID,Ohta Hiromichi2ORCID

Affiliation:

1. Graduate School of Information Science and Technology Hokkaido University N14W9, Kita 060‐0814 Sapporo Japan

2. Research Institute for Electronic Science Hokkaido University N20W10, Kita 001‐0020 Sapporo Japan

3. Department of Physics Pusan National University Geumjeong‐gu 46241 Busan Korea

4. Institute of Engineering Innovation The University of Tokyo 2‐11‐16 Yayoi Bunkyo Tokyo 113‐8656 Japan

Abstract

AbstractThermal transistors that electrically control heat flow have attracted growing attention as thermal management devices and phonon logic circuits. Although several thermal transistors are demonstrated, the use of liquid electrolytes may limit the application from the viewpoint of reliability or liquid leakage. Herein, a solid‐state thermal transistor that can electrochemically control the heat flow with an on‐to‐off ratio of the thermal conductivity (κ) of ≈4 without using any liquid is demonstrated. The thermal transistor is a multilayer film composed of an upper electrode, strontium cobaltite (SrCoOx), solid electrolyte, and bottom electrode. An electrochemical redox treatment at 280 °C in air repeatedly modulates the crystal structure and κ of the SrCoOx layer. The fully oxidized perovskite‐structured SrCoO3 layer shows a high κ ≈3 .8 W m−1 K−1, whereas the fully reduced defect perovskite‐structured SrCoO2 layer shows a low κ ≈ 0.95 W m−1 K−1. The present solid‐state electrochemical thermal transistor may become next‐generation devices toward future thermal management technology.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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