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Methylammonium-free co-evaporated perovskite absorbers with high radiation and UV tolerance: an option for in-space manufacturing of space-PV?

With a remarkable tolerance to high-energetic radiation and potential high power-to-weight ratios, halide perovskite-based solar cells are interesting for future space PV applications. In this work, we fabricate and test methylammonium-free, co-evaporated FA(0.7)Cs(0.3)Pb(I(0.9)Br(0.1))(3) perovskit...

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Autores principales: Lang, Felix, Chiang, Yu-Hsien, Frohna, Kyle, Ozen, Sercan, Neitzert, Heinz C., Denker, Andrea, Stolterfoht, Martin, Stranks, Samuel D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10337721/
https://www.ncbi.nlm.nih.gov/pubmed/37449029
http://dx.doi.org/10.1039/d3ra03846g
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author Lang, Felix
Chiang, Yu-Hsien
Frohna, Kyle
Ozen, Sercan
Neitzert, Heinz C.
Denker, Andrea
Stolterfoht, Martin
Stranks, Samuel D.
author_facet Lang, Felix
Chiang, Yu-Hsien
Frohna, Kyle
Ozen, Sercan
Neitzert, Heinz C.
Denker, Andrea
Stolterfoht, Martin
Stranks, Samuel D.
author_sort Lang, Felix
collection PubMed
description With a remarkable tolerance to high-energetic radiation and potential high power-to-weight ratios, halide perovskite-based solar cells are interesting for future space PV applications. In this work, we fabricate and test methylammonium-free, co-evaporated FA(0.7)Cs(0.3)Pb(I(0.9)Br(0.1))(3) perovskite solar cells that could potentially be fabricated in space or on the Moon by physical vapor deposition, making use of the available vacuum present. The absence of methylammonium hereby increased the UV-light stability significantly, an important factor considering the increased UV proportion in the extra-terrestrial solar spectrum. We then tested their radiation tolerance under high energetic proton irradiation and found that the PCE degraded to 0.79 of its initial value due to coloring of the glass substrate, a typical problem that often complicates analysis. To disentangle damage mechanisms and to assess whether the perovskite degraded, we employ injection-current-dependent electroluminescence (EL) and intensity-dependent V(OC) measurements to derive pseudo-JV curves that are independent of parasitic effects. This way we identify a high radiation tolerance with 0.96 of the initial PCE remaining after 1 × 10(13) p(+) cm(−2) which is beyond today's space material systems (<0.8) and on par with those of previously tested solution-processed perovskite solar cells. Together our results render co-evaporated perovskites as highly interesting candidates for future space manufacturing, while the pseudo-JV methodology presents an important tool to disentangle parasitic effects.
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spelling pubmed-103377212023-07-13 Methylammonium-free co-evaporated perovskite absorbers with high radiation and UV tolerance: an option for in-space manufacturing of space-PV? Lang, Felix Chiang, Yu-Hsien Frohna, Kyle Ozen, Sercan Neitzert, Heinz C. Denker, Andrea Stolterfoht, Martin Stranks, Samuel D. RSC Adv Chemistry With a remarkable tolerance to high-energetic radiation and potential high power-to-weight ratios, halide perovskite-based solar cells are interesting for future space PV applications. In this work, we fabricate and test methylammonium-free, co-evaporated FA(0.7)Cs(0.3)Pb(I(0.9)Br(0.1))(3) perovskite solar cells that could potentially be fabricated in space or on the Moon by physical vapor deposition, making use of the available vacuum present. The absence of methylammonium hereby increased the UV-light stability significantly, an important factor considering the increased UV proportion in the extra-terrestrial solar spectrum. We then tested their radiation tolerance under high energetic proton irradiation and found that the PCE degraded to 0.79 of its initial value due to coloring of the glass substrate, a typical problem that often complicates analysis. To disentangle damage mechanisms and to assess whether the perovskite degraded, we employ injection-current-dependent electroluminescence (EL) and intensity-dependent V(OC) measurements to derive pseudo-JV curves that are independent of parasitic effects. This way we identify a high radiation tolerance with 0.96 of the initial PCE remaining after 1 × 10(13) p(+) cm(−2) which is beyond today's space material systems (<0.8) and on par with those of previously tested solution-processed perovskite solar cells. Together our results render co-evaporated perovskites as highly interesting candidates for future space manufacturing, while the pseudo-JV methodology presents an important tool to disentangle parasitic effects. The Royal Society of Chemistry 2023-07-12 /pmc/articles/PMC10337721/ /pubmed/37449029 http://dx.doi.org/10.1039/d3ra03846g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Lang, Felix
Chiang, Yu-Hsien
Frohna, Kyle
Ozen, Sercan
Neitzert, Heinz C.
Denker, Andrea
Stolterfoht, Martin
Stranks, Samuel D.
Methylammonium-free co-evaporated perovskite absorbers with high radiation and UV tolerance: an option for in-space manufacturing of space-PV?
title Methylammonium-free co-evaporated perovskite absorbers with high radiation and UV tolerance: an option for in-space manufacturing of space-PV?
title_full Methylammonium-free co-evaporated perovskite absorbers with high radiation and UV tolerance: an option for in-space manufacturing of space-PV?
title_fullStr Methylammonium-free co-evaporated perovskite absorbers with high radiation and UV tolerance: an option for in-space manufacturing of space-PV?
title_full_unstemmed Methylammonium-free co-evaporated perovskite absorbers with high radiation and UV tolerance: an option for in-space manufacturing of space-PV?
title_short Methylammonium-free co-evaporated perovskite absorbers with high radiation and UV tolerance: an option for in-space manufacturing of space-PV?
title_sort methylammonium-free co-evaporated perovskite absorbers with high radiation and uv tolerance: an option for in-space manufacturing of space-pv?
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10337721/
https://www.ncbi.nlm.nih.gov/pubmed/37449029
http://dx.doi.org/10.1039/d3ra03846g
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