材料科学
热电效应
晶界
热电材料
纳米晶材料
碲化铋
声子散射
微观结构
铋
冶金
碲化铅
热压
碲化物
热导率
兴奋剂
光电子学
复合材料
纳米技术
热力学
物理
作者
Bed Poudel,Qing Hao,Yi Ma,Yucheng Lan,Austin J. Minnich,Bo Yu,Xiao Yan,Dezhi Wang,Andrew Muto,Daryoosh Vashaee,Xiaohong Chen,Jun‐Ming Liu,M. S. Dresselhaus,Gang Chen,Zhifeng Ren
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2008-03-21
卷期号:320 (5876): 634-638
被引量:5220
标识
DOI:10.1126/science.1156446
摘要
The dimensionless thermoelectric figure of merit (ZT) in bismuth antimony telluride (BiSbTe) bulk alloys has remained around 1 for more than 50 years. We show that a peak ZT of 1.4 at 100 degrees C can be achieved in a p-type nanocrystalline BiSbTe bulk alloy. These nanocrystalline bulk materials were made by hot pressing nanopowders that were ball-milled from crystalline ingots under inert conditions. Electrical transport measurements, coupled with microstructure studies and modeling, show that the ZT improvement is the result of low thermal conductivity caused by the increased phonon scattering by grain boundaries and defects. More importantly, ZT is about 1.2 at room temperature and 0.8 at 250 degrees C, which makes these materials useful for cooling and power generation. Cooling devices that use these materials have produced high-temperature differences of 86 degrees , 106 degrees , and 119 degrees C with hot-side temperatures set at 50 degrees, 100 degrees, and 150 degrees C, respectively. This discovery sets the stage for use of a new nanocomposite approach in developing high-performance low-cost bulk thermoelectric materials.
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