异质结
热电效应
数码产品
兴奋剂
材料科学
储能
光电子学
能量收集
热电材料
电导率
塞贝克系数
纳米技术
功率密度
能量转换效率
能量转换
光电效应
电气工程
半径
电阻率和电导率
电势能
可再生能源
热电发电机
薄膜
作者
Wenjing Liu,Li Xiang,Fei Wang,Xinyue Fan,Zefan Lin,Quan Gan,Yuan Li,Yao Lu
标识
DOI:10.1002/admt.202501956
摘要
Abstract In response to the high cost and toxicity of traditional Bi 2 Te 3 thermoelectric (TE) materials, this study employs a cation doping strategy to significantly optimize the TE performance of Bi 2 Se 3 films, achieving a power factor of 252.6 µW m −1 K − 2 at 440 K, which is the highest value for Bi 2 Se 3 ‐based flexible TE films synthesized by wet chemical methods. This improvement is attributed to the increase in electrical conductivity induced by Ag doping and the synergistic effects of energy filtering and doping effects. In addition, the Ag‐doped Bi 2 Se 3 film exhibits excellent flexibility and stability with only a 7% decrease in electrical conductivity after undergoing 2000 bends (with a radius of 4 mm). A flexible TE generator constructed based on the film outputs a power density of 123.4 µW cm − 2 at a temperature gradient of 33.5 K, validating its effectiveness in TE conversion. In addition to traditional applications such as wearable and portable energy harvesting and sensing, the film also holds great potential in emerging fields such as photoelectric conversion and electrochemical energy storage systems. The high TE performance, flexibility, cost‐effectiveness, and multifunctional application of the film make it a promising candidate for next‐generation energy conversion and storage technologies.
科研通智能强力驱动
Strongly Powered by AbleSci AI