Dielectric microspacers (DMS) are important components in thermal energy converters. Engineered DMS are fabricated and characterized on different substrates by depositing patterned ceramic thin films of alumina (Al2O3) and zirconia (ZrO2) with a thickness ranging from 0.3 to 3 mu m. Both Al2O3 and ZrO2 films are electrically and thermally optimized, finding zirconia more suitable as a thermal and electrical insulating material at high temperature, whereas the developed DMS are morphologically analyzed by scanning electron microscopy. The analysis of thermal simulations carried out with COMSOL Multiphysics allows identifying the best geometrical constraints for each single structure, whereas simulations carried out by the Fluent software allow identifying the best arrangement for DMS, leading to a solution with optimized pattern in terms of amount and spatial distribution so to achieve the required electrical and thermal insulation for practical applications. DMS are integrated within thermionic-photovoltaic devices to be validated experimentally, and enhanced electron emission measurements are successfully performed at a cathode temperature up to 1350 degrees C to verify the operational feasibility and potential of this technology.

Bellucci, A., Sabbatella, G., Girolami, M., Mastellone, M., Serpente, V., Mezzi, A., et al. (2021). Dielectric Micro‐ and Sub‐Micrometric Spacers for High‐Temperature Energy Converters. ENERGY TECHNOLOGY, 9(1), 2000788 [10.1002/ente.202000788].

Dielectric Micro‐ and Sub‐Micrometric Spacers for High‐Temperature Energy Converters

Riccardo Polini;
2021-01-01

Abstract

Dielectric microspacers (DMS) are important components in thermal energy converters. Engineered DMS are fabricated and characterized on different substrates by depositing patterned ceramic thin films of alumina (Al2O3) and zirconia (ZrO2) with a thickness ranging from 0.3 to 3 mu m. Both Al2O3 and ZrO2 films are electrically and thermally optimized, finding zirconia more suitable as a thermal and electrical insulating material at high temperature, whereas the developed DMS are morphologically analyzed by scanning electron microscopy. The analysis of thermal simulations carried out with COMSOL Multiphysics allows identifying the best geometrical constraints for each single structure, whereas simulations carried out by the Fluent software allow identifying the best arrangement for DMS, leading to a solution with optimized pattern in terms of amount and spatial distribution so to achieve the required electrical and thermal insulation for practical applications. DMS are integrated within thermionic-photovoltaic devices to be validated experimentally, and enhanced electron emission measurements are successfully performed at a cathode temperature up to 1350 degrees C to verify the operational feasibility and potential of this technology.
2021
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/03 - CHIMICA GENERALE E INORGANICA
English
Con Impact Factor ISI
dielectric materials
high-temperature energy converters
insulators
microspacers
thermionic energy converters
This work was funded by project AMADEUS, which had received funds from the European Union Horizon 2020 research and innovation program, FET-OPEN action, under Grant Agreement 737054. The sole responsibility for the content of this publication lay with the authors. It does not necessarily reflect the opinion of the European Union. This work was supported by the European Commission FP7-Energy Project E2PHEST2US (Enhanced Energy Production of Heat and Electricity by a Combined Solar Thermionic-Thermoelectric Unit System), Grant Agreement No. 241270, website: http://cordis.europa.eu/project/rcn/93225_en.html and by the FP7 FET-Energy Project ProME3ThE2US2 (Production Method of Electrical Energy by Enhanced Thermal Electron Emission by the Use of Superior Semiconductors), and Grant Agreement No. 308975, website: http://cordis.europa.eu/project/rcn/108455_en.html.
https://onlinelibrary.wiley.com/doi/abs/10.1002/ente.202000788
Bellucci, A., Sabbatella, G., Girolami, M., Mastellone, M., Serpente, V., Mezzi, A., et al. (2021). Dielectric Micro‐ and Sub‐Micrometric Spacers for High‐Temperature Energy Converters. ENERGY TECHNOLOGY, 9(1), 2000788 [10.1002/ente.202000788].
Bellucci, A; Sabbatella, G; Girolami, M; Mastellone, M; Serpente, V; Mezzi, A; Kaciulis, S; Paci, B; Generosi, A; Polini, R; Vitulano, A; Vivaldi, I; ...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/260524
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