材料科学
功勋
能量转换效率
热电材料
热电效应
工程物理
塞贝克系数
光电子学
兴奋剂
大气温度范围
价带
性能系数
带隙
热导率
热力学
复合材料
物理
工程类
气体压缩机
制冷剂
作者
Yu Zhang,Zhi Li,Saurabh Singh,Amin Nozariasbmarz,Wenjie Li,Aziz Genç,Yi Xia,Luyao Zheng,Seng Huat Lee,Sumanta Kumar Karan,Gagan K. Goyal,Na Liu,Sanghadasa Mf Mohan,Zhiqiang Mao,Andreu Cabot,Christopher Wolverton,Bed Poudel,Shashank Priya
标识
DOI:10.1002/adma.202208994
摘要
Thermoelectric (TE) generators enable the direct and reversible conversion between heat and electricity, providing applications in both refrigeration and power generation. In the last decade, several TE materials with relatively high figures of merit (zT) have been reported in the low- and high-temperature regimes. However, there is an urgent demand for high-performance TE materials working in the mid-temperature range (400-700 K). Herein, p-type AgSbTe2 materials stabilized with S and Se co-doping are demonstrated to exhibit an outstanding maximum figure of merit (zTmax ) of 2.3 at 673 K and an average figure of merit (zTave ) of 1.59 over the wide temperature range of 300-673 K. This exceptional performance arises from an enhanced carrier density resulting from a higher concentration of silver vacancies, a vastly improved Seebeck coefficient enabled by the flattening of the valence band maximum and the inhibited formation of n-type Ag2 Te, and ahighly improved stability beyond 673 K. The optimized material is used to fabricate a single-leg device with efficiencies up to 13.3% and a unicouple TE device reaching energy conversion efficiencies up to 12.3% at a temperature difference of 370 K. These results highlight an effective strategy to engineer high-performance TE material in the mid-temperature range.
科研通智能强力驱动
Strongly Powered by AbleSci AI