气凝胶
材料科学
重量分析
多孔性
光电子学
能量收集
热电发电机
热电效应
发电机(电路理论)
热导率
工作(物理)
米
热能
纳米技术
热电偶
复合材料
热的
抗压强度
电阻率和电导率
塞贝克系数
石墨
功率(物理)
多孔介质
太阳能
作者
Xiaodong Wang,Wenbo Zhu,Y. J. Liu,Shuaihang Hou,Li Yin,Jinxuan Cheng,Peng Zhao,Feng Jiang,Sichen Duan,Wenhua Xue,Yumei Wang,Xuesong Leng,Feng Cao,Jinhua Mao,Mingyu Li,Qian Zhang
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-01-09
卷期号:12 (2): eady7679-eady7679
被引量:5
标识
DOI:10.1126/sciadv.ady7679
摘要
Despite their promise as lightweight, ultralow–thermal-conductivity thermoelectric (TE) materials, aerogels have been largely limited to p-type organic or carbon-based systems with modest zT < 0.1 at 300 kelvin. Here, we propose a stepwise synthesis strategy that yields the first inorganic aerogel exhibiting state-of-the-art n-type TE performance. Optimized aerogels with 95% porosity exhibit a high power factor of 34.8 microwatts per meter per square kelvin and an ultralow thermal conductivity of 0.061 microwatts per meter per kelvin, resulting in zT values of 0.17 at 300 kelvin and 0.24 at 383 kelvin. A vertical TE generator prototype with six TE-aerogel legs achieves a gravimetric output power of 76 microwatts per gram under a Δ T of ~60 kelvin. To address brittleness, a polyimide-encapsulated aerogel with bioinspired architecture was developed, achieving a high compressive strength to 1.4 kilopascals while maintaining excellent TE performance. This work establishes a generalizable method for designing high-performance flexible inorganic aerogels, opening more possibilities for lightweight wearable energy harvesting technologies.
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