Flexible Ag2Se-based thin-film thermoelectrics for sustainable energy harvesting and cooling

W Wenyi Chen M Meng Li X Xiaodong Wang (CAS Key Laboratory of Science and Technology on Applied Catalysis) J Joseph Otte M Min Zhang C Chengyang Zhang (School of Chemistry and Materials Science) T Tianyi Cao (Bio-X Institutes, Key Laboratory for the Genetics of Developmental and Neuropsychiatric Disorders (Ministry of Education), Shanghai Jiao Tong University) B Boxuan Hu N Nanhai Li W Wei-Di Liu M Matthew Dargusch J Jin Zou Q Qiang Sun Z Zhi-Gang Chen (School of Chemistry and Physics, Australian Research Council Research Hub in Zero-emission Power Generation for Carbon Neutrality, and Centre for Materials Science, Queensland University of Technology) X Xiao-Lei Shi (School of Chemistry and Physics, Australian Research Council Research Hub in Zero-emission Power Generation for Carbon Neutrality, and Centre for Materials Science, Queensland University of Technology)

Abstract

Abstract The high cost and complexity of fabrication limit the large-scale application of flexible inorganic thermoelectric materials. Currently, Bi2Te3-based materials are the only commercially viable option, but the inclusion of Te significantly increases production costs. This study presents a simple and cost-effective method for fabricating flexible Ag2Se films, employing a combination of solvothermal synthesis, screen printing, and spark plasma sintering. The incorporation of a small amount of Te improves film density and facilitates Te diffusion doping, leading to Ag2Se films with a high power factor of 25.7 μW cm−1 K−2 and a figure of merit (ZT) of 1.06 at 303 K. These films exhibit excellent flexibility, retaining 96% of their performance after 1000 bending cycles at a 5 mm bending radius. Additionally, we design a flexible thermoelectric device featuring a triangular p-n junction structure based on these films. This device achieves a normalized power density of 4.8 μW cm−2 K−2 at a temperature difference of 20 K and a maximum cooling of 29.8 K with an input current of 92.4 mA. These findings highlight the potential of this fabrication method for developing thermoelectric materials and devices for energy harvesting and cooling applications.

Article Details

Volume / Issue Vol. 16, Issue 1
Published August 15, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

W

Wenyi Chen

M

Meng Li

X

Xiaodong Wang

CAS Key Laboratory of Science and Technology on Applied Catalysis

J

Joseph Otte

M

Min Zhang

C

Chengyang Zhang

School of Chemistry and Materials Science

T

Tianyi Cao

Bio-X Institutes, Key Laboratory for the Genetics of Developmental and Neuropsychiatric Disorders (Ministry of Education), Shanghai Jiao Tong University

B

Boxuan Hu

N

Nanhai Li

W

Wei-Di Liu

M

Matthew Dargusch

J

Jin Zou

Q

Qiang Sun

Z

Zhi-Gang Chen

School of Chemistry and Physics, Australian Research Council Research Hub in Zero-emission Power Generation for Carbon Neutrality, and Centre for Materials Science, Queensland University of Technology

X

Xiao-Lei Shi

School of Chemistry and Physics, Australian Research Council Research Hub in Zero-emission Power Generation for Carbon Neutrality, and Centre for Materials Science, Queensland University of Technology