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n-Type thermoelectric elastomers

delete2025-08-13
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PRE
AI
K
Kai Liu
J
Jingyi Wang
X
Xiran Pan
S
Shuangyan Tian
Y
Yudong Liu
Z
Zhi Zhang
Y
Yuqiu Di
J
Jupeng Chen
C
Cheng‐Wen Wu
X
Xinyu Deng
D
Dongyang Wang
P
Peiyun Li
C
Chen‐Kai Pan
F
Fenglian Qi
J
Jinhui Liu
J
Jing Hua
裴坚 cover
裴坚 (Jian Pei)
C
Chong‐an Di
Y
Yunlong Guo
刘云圻 (Yunqi Liu)
T
Ting Lei *
DOI:10.1038/s41586-025-09387-zdelete
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Abstract

Abstract

En 中文
Intrinsically elastic thermoelectric generators with superior conformal coverage and shape adaptability are highly desirable for developing self-powered wearable electronics, soft bioelectronics and personal temperature regulators1,2. Until now, all reported high-performance thermoelectric materials have realized only flexibility, rather than elasticity3,4. Here we present one of the first n-type thermoelectric elastomers by integrating uniform bulk nanophase separation, thermally activated crosslinking and targeted doping into a single material. The thermoelectric elastomers could exhibit exceptional rubber-like recovery of up to 150% strains and high figure of merit values rivalling flexible inorganic materials even under mechanical deformations. Conventional wisdom suggests that incorporating insulating polymers should dilute the active component in organic thermoelectrics, resulting in lower performance. However, we demonstrate that carefully selected elastomers and dopants can promote the formation of uniformly distributed, elastomer-wrapped and heavily n-doped semiconducting polymer nanofibrils, leading to improved electrical conductivity and decreased thermal conductivity. These thermoelectric elastomers have the potential to make elastic thermoelectric generators in wearable applications much more conformable and efficient. A microphase crosslinking strategy, leveraging aziridine-based crosslinkers, is used to render organic thermoelectric materials stretchable and elastic.
Keywords:
n-Type thermoelectric elastomers
stretchable thermoelectrics
nanophase separation
elastomer-wrapped nanofibrils
microphase crosslinking

Journal

Nature cover
Nature
IF:
48.5
Papers:
1.8W
Citations:
96.5W

Organization

I
Institute of Chemistry Chinese Academy of Sciences
Scholars:
106
Papers: 28
Citations: 0
Q
qingdao university of science and technology
Scholars:
4.4K
Papers: 1.3K
Citations: 1
P
peking university
Scholars:
11.8W
Papers: 8.7W
Citations: 146
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