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Enhanced and Selective Absorption of Molybdenum Nanostructured Surfaces for Concentrated Solar Energy Applications

Surfaces of commercial molybdenum (Mo) plates have been textured by fs-laser treatments with the aim to form low-cost and efficient solar absorbers and substrates for thermionic cathodes in Concentrated Solar Power conversion devices. Morphological (SEM and AFM), optical (spectrophotometry), and str...

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Autores principales: Santagata, Antonio, Pace, Maria Lucia, Bellucci, Alessandro, Mastellone, Matteo, Bolli, Eleonora, Valentini, Veronica, Orlando, Stefano, Sani, Elisa, Failla, Simone, Sciti, Diletta, Trucchi, Daniele Maria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9741426/
https://www.ncbi.nlm.nih.gov/pubmed/36499821
http://dx.doi.org/10.3390/ma15238333
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author Santagata, Antonio
Pace, Maria Lucia
Bellucci, Alessandro
Mastellone, Matteo
Bolli, Eleonora
Valentini, Veronica
Orlando, Stefano
Sani, Elisa
Failla, Simone
Sciti, Diletta
Trucchi, Daniele Maria
author_facet Santagata, Antonio
Pace, Maria Lucia
Bellucci, Alessandro
Mastellone, Matteo
Bolli, Eleonora
Valentini, Veronica
Orlando, Stefano
Sani, Elisa
Failla, Simone
Sciti, Diletta
Trucchi, Daniele Maria
author_sort Santagata, Antonio
collection PubMed
description Surfaces of commercial molybdenum (Mo) plates have been textured by fs-laser treatments with the aim to form low-cost and efficient solar absorbers and substrates for thermionic cathodes in Concentrated Solar Power conversion devices. Morphological (SEM and AFM), optical (spectrophotometry), and structural (Raman spectroscopy) properties of the samples treated at different laser fluences (from 1.8 to 14 J/cm(2)) have been characterized after the laser treatments and also following long thermal annealing for simulating the operating conditions of thermionic converters. A significant improvement of the solar absorptance and selectivity, with a maximum value of about four times higher than the pristine sample at a temperature of 800 K, has been detected for sample surfaces treated at intermediate fluences. The effects observed have been related to the light trapping capability of the laser-induced nanotexturing, whereas a low selectivity, together with a high absorptance, could be revealed when the highest laser fluence was employed due to a significant presence of oxide species. The ageing process confirms the performance improvement shown when treated samples are used as solar absorbers, even though, due to chemical modification occurring at the surface, a decrease of the solar absorptance takes place. Interestingly, the sample showing the highest quantity of oxides preserves more efficiently the laser texturing. The observation of this behaviour allows to extend the applicability of the laser treatments since, by further nanostructuring of the Mo oxides, it could be beneficial also for sensing applications.
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spelling pubmed-97414262022-12-11 Enhanced and Selective Absorption of Molybdenum Nanostructured Surfaces for Concentrated Solar Energy Applications Santagata, Antonio Pace, Maria Lucia Bellucci, Alessandro Mastellone, Matteo Bolli, Eleonora Valentini, Veronica Orlando, Stefano Sani, Elisa Failla, Simone Sciti, Diletta Trucchi, Daniele Maria Materials (Basel) Article Surfaces of commercial molybdenum (Mo) plates have been textured by fs-laser treatments with the aim to form low-cost and efficient solar absorbers and substrates for thermionic cathodes in Concentrated Solar Power conversion devices. Morphological (SEM and AFM), optical (spectrophotometry), and structural (Raman spectroscopy) properties of the samples treated at different laser fluences (from 1.8 to 14 J/cm(2)) have been characterized after the laser treatments and also following long thermal annealing for simulating the operating conditions of thermionic converters. A significant improvement of the solar absorptance and selectivity, with a maximum value of about four times higher than the pristine sample at a temperature of 800 K, has been detected for sample surfaces treated at intermediate fluences. The effects observed have been related to the light trapping capability of the laser-induced nanotexturing, whereas a low selectivity, together with a high absorptance, could be revealed when the highest laser fluence was employed due to a significant presence of oxide species. The ageing process confirms the performance improvement shown when treated samples are used as solar absorbers, even though, due to chemical modification occurring at the surface, a decrease of the solar absorptance takes place. Interestingly, the sample showing the highest quantity of oxides preserves more efficiently the laser texturing. The observation of this behaviour allows to extend the applicability of the laser treatments since, by further nanostructuring of the Mo oxides, it could be beneficial also for sensing applications. MDPI 2022-11-23 /pmc/articles/PMC9741426/ /pubmed/36499821 http://dx.doi.org/10.3390/ma15238333 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Santagata, Antonio
Pace, Maria Lucia
Bellucci, Alessandro
Mastellone, Matteo
Bolli, Eleonora
Valentini, Veronica
Orlando, Stefano
Sani, Elisa
Failla, Simone
Sciti, Diletta
Trucchi, Daniele Maria
Enhanced and Selective Absorption of Molybdenum Nanostructured Surfaces for Concentrated Solar Energy Applications
title Enhanced and Selective Absorption of Molybdenum Nanostructured Surfaces for Concentrated Solar Energy Applications
title_full Enhanced and Selective Absorption of Molybdenum Nanostructured Surfaces for Concentrated Solar Energy Applications
title_fullStr Enhanced and Selective Absorption of Molybdenum Nanostructured Surfaces for Concentrated Solar Energy Applications
title_full_unstemmed Enhanced and Selective Absorption of Molybdenum Nanostructured Surfaces for Concentrated Solar Energy Applications
title_short Enhanced and Selective Absorption of Molybdenum Nanostructured Surfaces for Concentrated Solar Energy Applications
title_sort enhanced and selective absorption of molybdenum nanostructured surfaces for concentrated solar energy applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9741426/
https://www.ncbi.nlm.nih.gov/pubmed/36499821
http://dx.doi.org/10.3390/ma15238333
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