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.

Solar Thermionic-Thermoelectric Generator (ST2G): Concept, Materials Engineering, and Prototype Demonstration

Trucchi Daniele Maria;Bellucci Alessandro;Girolami Marco;Calvani Paolo;Cappelli Emilia;Orlando Stefano;Silvestroni Laura;Sciti Diletta;
2018

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.
2018
Istituto di Scienza, Tecnologia e Sostenibilità per lo Sviluppo dei Materiali Ceramici - ISSMC (ex ISTEC)
Istituto di Struttura della Materia - ISM - Sede Roma Tor Vergata
Inglese
8
32
1802310
14
http://www.scopus.com/record/display.url?eid=2-s2.0-85054480931&origin=inward
Sì, ma tipo non specificato
concentrated solar energy
nanodiamond films
surface nanotexturing by ultrashort laser pulses
thermionic-thermoelectric generators
ultrarefractory selective absorbers
6
info:eu-repo/semantics/article
262
Trucchi, Daniele Maria; Bellucci, Alessandro; Girolami, Marco; Calvani, Paolo; Cappelli, Emilia; Orlando, Stefano; Polini, Riccardo; Polini, Riccardo;...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
none
   Production Method Of Electrical Energy by Enhanced Thermal Electron Emission by the Use of Superior Semiconductors
   PROME3THE2US2
   FP7
   308975

   Enhanced Energy Production of Heat and Electricity by a combined Solar Thermionic-Thermoelectric Unit System.
   E2PHEST2US
   FP7
   241270
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/346593
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