材料科学
斯库特绿铁矿
热电发电机
热电效应
功率密度
热电材料
体积热力学
金属
工作(物理)
复合材料
功率(物理)
最大功率原理
塞贝克系数
光电子学
凝聚态物理
机械工程
热导率
热力学
冶金
物理
工程类
作者
Soufiane El Oualid,Iurii Kogut,Mohamed Benyahia,Eugen Geczi,Uwe Kruck,F. Kosior,P. Masschelein,Christophe Candolfi,A. Dauscher,Jan D. Koenig,Alexandre Jacquot,T. Caillat,E. Alleno,B. Lenoir
标识
DOI:10.1002/aenm.202100580
摘要
Abstract Thermoelectric generators (TEGs) offer a versatile solution to convert low‐grade heat into useful electrical power. While reducing the length of the active thermoelectric legs provides an efficient strategy to increase the maximum output power density p max , both the high electrical contact resistances and thermomechanical stresses are two central issues that have so far prevented a strong reduction in the volume of thermoelectric materials integrated. Here, it is demonstrated that these barriers can be lifted by using a nonconventional architecture of the legs which involves inserting thick metallic layers. Using skutterudites as a proof‐of‐principle, several single‐couple and multi‐couple TEGs with skutterudite layers of only 1 mm are fabricated, yielding record p max ranging from 3.4 up to 7.6 W cm −2 under temperature differences varying between 450 and 630 K. The highest p max achieved corresponds to a 60‐fold increase per unit volume of skutterudites compared to 1 cm long legs. This work establishes thick metallic layers as a robust strategy through which high power density TEGs may be developed.
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