热电发电机
材料科学
热离子发射
热电效应
能量转换效率
热电材料
光电子学
工程物理
热力学
物理
电子
工程类
复合材料
热导率
量子力学
作者
D.M. Trucchi,Alessandro Bellucci,M. Girolami,P. Calvani,E. Cappelli,S. Orlando,Riccardo Polini,Laura Silvestroni,Diletta Sciti,Abraham Kribus
标识
DOI:10.1002/aenm.201802310
摘要
Abstract The thermionic‐thermoelectric solid‐state technology, characterized by solar‐to‐electric conversion efficiency feasibly >40%, is comprehensively proposed and discussed for conversion of concentrating solar power. For the first time, the related solar generator prototype is designed and fabricated by developing advanced materials functionalized for the specific application, such as thermally resistant hafnium carbide‐based radiation absorbers, surface‐textured at the nanoscale to obtain a solar absorptance >90%, and chemical vapor deposition diamond films, acting as low‐work‐function (2.06 eV) thermionic emitters. Commercial thermoelectric generators and encapsulation vacuum components complete the prototype. The conversion efficiency is here evaluated under outdoor concentrated sunlight, demonstrating thermionic stage output power of 130 mW at 756 °C, combined to the maximum thermoelectric output power of 290 mW. The related solar‐to‐electric conversion efficiency is found to be 0.4%, but, once the net thermal flux fed to the conversion stages is considered, a thermal‐to‐electric efficiency of 6% is revealed. Factors affecting the performance of the present prototype are analyzed and discussed, as well as a strategy to rapidly overcome limitations, in order to prepare an efficient and highly competitive solid‐state conversion alternative for future concentrating solar plants.
科研通智能强力驱动
Strongly Powered by AbleSci AI