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Microfluidic-enabled three-dimensional stretchable thermoelectrics

delete2025-06-06
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OA
AI
Z
Zhenlong Huang *
T
Tao Chen
Y
Yan Jiang
周睿 cover
周睿 (Rui Zhou)
Y
Yizhuo Wang
吉俊杰 cover
吉俊杰 (Junjie Ji)
H
Hongwei Xie
T
Taisong Pan
D
Dongpeng Fan
L
Linlong Liang
L
Longpeng Yang
B
Binbin Jiang
P
Peng Li
M
Min Gao
朱嘉 (Jia Zhu)
G
Guang Yao
D
Dongfeng Xue
Y
Yuan Lin *
DOI:10.1038/s41528-025-00429-0delete
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Abstract

Abstract

En 中文
Stretchable electronics hold promise but remain limited to low‑power use due to poor heat dissipation. We present a three-dimensional (3D) integration strategy combining elastomeric material modification, 3D printing, and laser etching to fabricate stretchable thermoelectric devices (TEDs) with enhanced refrigeration capabilities. The device features a 3D architecture integrating embedded microfluidics with multilayer thermoelectric networks, providing improved heat exchange capacity suitable for high thermal design power (TDP) requirements. The device achieves ~10 °C environmental and 11 °C on-skin temperature reduction with precise control. Furthermore, by integrating a temperature sensor and control circuit with the 3D TED, a wearable closed-loop system is developed. Benefiting from the improved device performance and advanced control algorithms, this system enables accurate and rapid regulation of skin temperature, demonstrating potential applications in virtual temperature and pain sensation. The integration method proposed here may offer a generalizable approach for advancing high-power stretchable electronics, thereby broadening their range of applications.
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Journal

npj Flexible Electronics cover
npj Flexible Electronics
IF:
15.5
Papers:
657
Citations:
4.6K

Organization

S
School of Materials and Energy
Scholars:
320
Papers: 81
Citations: 0
S
Shenzhen Institute for Advanced Study
Scholars:
47
Papers: 20
Citations: 0