热电发电机
材料科学
热电效应
功率密度
能量收集
陶瓷
发电机(电路理论)
热电材料
氧化物
工程物理
工艺工程
余热
工作(物理)
发电
功率(物理)
机械工程
光电子学
复合材料
冶金
热导率
热交换器
工程类
热力学
物理
作者
Sophie Bresch,Patrick Stargardt,Ralf Moos,Björn Mieller
标识
DOI:10.1002/aelm.202300636
摘要
Abstract Thermoelectric generators are very attractive devices for waste heat energy harvesting as they transform a temperature difference into electrical power. However, commercially available generators show poor power density and limited operation temperatures. Research focuses on high‐temperature materials and innovative generator designs. Finding the optimal design for a given material system is challenging. Here, a theoretical framework is provided that allows appropriate generator design selection based on the particular material properties. For high‐temperature thermoelectric oxides, it can be clearly deduced that unileg multilayer generators have the highest potential for effective energy harvesting. Based on these considerations, prototype unileg multilayer generators from the currently best thermoelectric oxide Ca 3 Co 4 O 9 are manufactured for the first time by industrially established ceramic multilayer technology. These generators exhibit a power density of 2.2 mW cm −2 at a temperature difference of 260 K, matching simulated values and confirming the suitability of the technology. Further design improvements increase the power density by a factor of 22 to facilitate practicable power output at temperature differences as low as 7 K. This work demonstrates that reasonable energy harvesting at elevated temperatures is possible with oxide materials and appropriate multilayer design.
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