Cargando…

A new ultrafast energy funneling material harvests three times more diffusive solar energy for GaInP photovoltaics

There is no theoretical limit in using molecular networks to harvest diffusive sun photons on large areas and funnel them onto much smaller areas of highly efficient but also precious energy-converting materials. The most effective concept reported so far is based on a pool of randomly oriented, lig...

Descripción completa

Detalles Bibliográficos
Autores principales: Willich, Marcel M., Wegener, Lucas, Vornweg, Johannes, Hohgardt, Manuel, Nowak, Julia, Wolter, Mario, Jacob, Christoph R., Walla, Peter Jomo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7776598/
https://www.ncbi.nlm.nih.gov/pubmed/33318220
http://dx.doi.org/10.1073/pnas.2019198117
_version_ 1783630721361903616
author Willich, Marcel M.
Wegener, Lucas
Vornweg, Johannes
Hohgardt, Manuel
Nowak, Julia
Wolter, Mario
Jacob, Christoph R.
Walla, Peter Jomo
author_facet Willich, Marcel M.
Wegener, Lucas
Vornweg, Johannes
Hohgardt, Manuel
Nowak, Julia
Wolter, Mario
Jacob, Christoph R.
Walla, Peter Jomo
author_sort Willich, Marcel M.
collection PubMed
description There is no theoretical limit in using molecular networks to harvest diffusive sun photons on large areas and funnel them onto much smaller areas of highly efficient but also precious energy-converting materials. The most effective concept reported so far is based on a pool of randomly oriented, light-harvesting donor molecules that funnel all excitation quanta by ultrafast energy transfer to individual light-redirecting acceptor molecules oriented parallel to the energy converters. However, the best practical light-harvesting system could only be discovered by empirical screening of molecules that either align or not within stretched polymers and the maximum absorption wavelength of the empirical system was far away from the solar maximum. No molecular property was known explaining why certain molecules would align very effectively whereas similar molecules did not. Here, we first explore what molecular properties are responsible for a molecule to be aligned. We found a parameter derived directly from the molecular structure with a high predictive power for the alignability. In addition, we found a set of ultrafast funneling molecules that harvest three times more energy in the solar’s spectrum peak for GaInP photovoltaics. A detailed study on the ultrafast dipole moment reorientation dynamics demonstrates that refocusing of the diffusive light is based on ∼15-ps initial dipole moment depolarization followed by ∼50-ps repolarization into desired directions. This provides a detailed understanding of the molecular depolarization/repolarization processes responsible for refocusing diffusively scattered photons without violating the second law of thermodynamics.
format Online
Article
Text
id pubmed-7776598
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher National Academy of Sciences
record_format MEDLINE/PubMed
spelling pubmed-77765982021-01-12 A new ultrafast energy funneling material harvests three times more diffusive solar energy for GaInP photovoltaics Willich, Marcel M. Wegener, Lucas Vornweg, Johannes Hohgardt, Manuel Nowak, Julia Wolter, Mario Jacob, Christoph R. Walla, Peter Jomo Proc Natl Acad Sci U S A Physical Sciences There is no theoretical limit in using molecular networks to harvest diffusive sun photons on large areas and funnel them onto much smaller areas of highly efficient but also precious energy-converting materials. The most effective concept reported so far is based on a pool of randomly oriented, light-harvesting donor molecules that funnel all excitation quanta by ultrafast energy transfer to individual light-redirecting acceptor molecules oriented parallel to the energy converters. However, the best practical light-harvesting system could only be discovered by empirical screening of molecules that either align or not within stretched polymers and the maximum absorption wavelength of the empirical system was far away from the solar maximum. No molecular property was known explaining why certain molecules would align very effectively whereas similar molecules did not. Here, we first explore what molecular properties are responsible for a molecule to be aligned. We found a parameter derived directly from the molecular structure with a high predictive power for the alignability. In addition, we found a set of ultrafast funneling molecules that harvest three times more energy in the solar’s spectrum peak for GaInP photovoltaics. A detailed study on the ultrafast dipole moment reorientation dynamics demonstrates that refocusing of the diffusive light is based on ∼15-ps initial dipole moment depolarization followed by ∼50-ps repolarization into desired directions. This provides a detailed understanding of the molecular depolarization/repolarization processes responsible for refocusing diffusively scattered photons without violating the second law of thermodynamics. National Academy of Sciences 2020-12-29 2020-12-14 /pmc/articles/PMC7776598/ /pubmed/33318220 http://dx.doi.org/10.1073/pnas.2019198117 Text en Copyright © 2020 the Author(s). Published by PNAS. http://creativecommons.org/licenses/by/4.0/ https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Physical Sciences
Willich, Marcel M.
Wegener, Lucas
Vornweg, Johannes
Hohgardt, Manuel
Nowak, Julia
Wolter, Mario
Jacob, Christoph R.
Walla, Peter Jomo
A new ultrafast energy funneling material harvests three times more diffusive solar energy for GaInP photovoltaics
title A new ultrafast energy funneling material harvests three times more diffusive solar energy for GaInP photovoltaics
title_full A new ultrafast energy funneling material harvests three times more diffusive solar energy for GaInP photovoltaics
title_fullStr A new ultrafast energy funneling material harvests three times more diffusive solar energy for GaInP photovoltaics
title_full_unstemmed A new ultrafast energy funneling material harvests three times more diffusive solar energy for GaInP photovoltaics
title_short A new ultrafast energy funneling material harvests three times more diffusive solar energy for GaInP photovoltaics
title_sort new ultrafast energy funneling material harvests three times more diffusive solar energy for gainp photovoltaics
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7776598/
https://www.ncbi.nlm.nih.gov/pubmed/33318220
http://dx.doi.org/10.1073/pnas.2019198117
work_keys_str_mv AT willichmarcelm anewultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT wegenerlucas anewultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT vornwegjohannes anewultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT hohgardtmanuel anewultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT nowakjulia anewultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT woltermario anewultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT jacobchristophr anewultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT wallapeterjomo anewultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT willichmarcelm newultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT wegenerlucas newultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT vornwegjohannes newultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT hohgardtmanuel newultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT nowakjulia newultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT woltermario newultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT jacobchristophr newultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics
AT wallapeterjomo newultrafastenergyfunnelingmaterialharveststhreetimesmorediffusivesolarenergyforgainpphotovoltaics