材料科学
热电效应
碲化铋
热电冷却
光电子学
碲
碲化物
塞贝克系数
硒化物
热电材料
热电发电机
铬
热导率
工程物理
铋
兴奋剂
性能系数
热的
功率密度
水冷
冶金
冷却能力
核工程
发电
功率消耗
工作温度
硫系化合物
作者
Shibo Liu,Yu Tian,Yi Wen,Shulin Bai,Bingchao Qin,H. L. Shi,Lizhong Su,Xiaokun Feng,Rong Liu,Dezheng Gao,Jie Yang,Yixuan Hu,Tian Gao,Dongrui Liu,Yuxia Li,Yumo Zhu,Shaowei Han,Linlong Xing,S Wang,Xiang Gao
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-06-04
卷期号:392 (6802): 1056-1060
标识
DOI:10.1126/science.aeg8963
摘要
Thermoelectric cooling is pivotal for solid-state thermal management, yet large-scale deployment is hindered by the scarcity and cost of tellurium in commercial bismuth telluride devices. We developed a tellurium-free thermoelectric cooler based on all lead selenide (PbSe), in which an ultralow-dopant chromium (Cr) grid allows the engineering of defects and donors to optimize carrier transport to match the performance of the n-type and p-type legs. We fabricated high-performance n-type (PbSe + 0.005Cr) and p-type (PbSe + 0.001Cr) crystals with synergistically matched properties. The device exhibits exceptional performance with lower power consumption and higher cooling capacity, achieving a cooling density of approximately 6 watts per square centimeter, a peak coefficient of performance of approximately 21, and a maximum temperature difference of approximately 53 kelvin at a 363-kelvin hot-side temperature. These findings establish PbSe as a highly effective, sustainable alternative for large-scale cooling applications.
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