材料科学
相容性(地球化学)
热电效应
Boosting(机器学习)
功勋
热导率
弯曲半径
无量纲量
工程物理
电压
热稳定性
机械工程
热电材料
复合材料
晶界
颗粒
能量转换效率
粒度
粒度
热的
光电子学
功率密度
数码产品
高效能源利用
电导率
声子
计算机科学
电气工程
可穿戴技术
电容器
工作温度
作者
Ruopu Liu,Li Ma,L. W. Song,Zhijie Wei,Yuan Wang,Yu‐Xuan Mo,Yu Tian,Jun Hu,Zhe Zheng,Hengyang Wang,Zhifang Zhou,Shunjie Deng,Lin Lei,Yiying Zhao,Yan Shi,Xu Lu,Lei Yang,Yuan‐Hua Lin,Guang‐Kun Ren
出处
期刊:Small
[Wiley]
日期:2025-09-18
卷期号:21 (45): e06029-e06029
标识
DOI:10.1002/smll.202506029
摘要
Abstract High energy conversion performance and sufficient flexibility are of great significance for widening the applications of thermoelectric devices (TEDs), yet the inferior compatibility between them needs to be deeply optimized. In this work, similar dimensionless figure of merit ( ZT ) values have been maintained for Bi 2 Te 3 ‐based constituents with strengthened phonon scattering, further assembling optimized flexible TEDs (F‐TEDs). Thus, a maximum ZT value of 1.2 at 373 K has been implemented for p‐type Bi 0.5 Sb 1.5 Te 3 material, where the related thermal conductivity gradually reduced by modifying the grain size. Subsequently, a 200‐pair F‐TED with a packing factor of 35% has been delivered, where the open‐circuit voltage and power density can achieve 3.0 V and 13.8 mW cm −2 at the temperature difference of 73 K, respectively. After a stretching test at the bending radius of 5 mm, the TED remains complete and ascertains excellent electrical stability and structural reliability. Besides, the height and weight have been decreased by 70% and 75%, as compared to those of the pristine TED. Therefore, the attributes of comfort and high flexibility have been endowed through halving the leg height and applying the high‐density strategy, further boosting the practicality of Bi 2 Te 3 ‐based F‐TEDs for wearable applications.
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