dc.contributor.author
Teixeira Alves Duarte, Luís Gustavo
dc.contributor.author
Lamas, Iker
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Bäuerle, Dominik
dc.contributor.author
Shareef, Saeed
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Cunha, Renato D.
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Curutchet, Carles
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Curti, Mariano
dc.contributor.author
Romero, Elisabet
dc.date.accessioned
2026-01-30T11:45:29Z
dc.date.available
2026-01-30T11:45:29Z
dc.date.issued
2026-01-11
dc.identifier.uri
https://hdl.handle.net/2072/489201
dc.description.abstract
Photosynthesis relies on highly organized pigment–protein complexes in order to store sunlight energy as biochemical energy. These complexes capture light with remarkable efficiency and are responsible for ultrafast charge separation within a finely tuned energy landscape provided by the protein environments, producing one of nature’s most sophisticated energy conversion systems. Inspired by nature, de novo designed proteins have been proven to be versatile platforms to emulate the function of natural light-harvesting complexes and reaction centers. With Stark and ultrafast transient absorption spectroscopies, we explored the exciton and charge-transfer (CT) mixing, as well as the excited-state dynamics, of a chlorophyll a analogue (Zn-pheophorbide a) in dimers formed within 4-α-helix bundles whose design was previously guided by molecular dynamics simulations. Due to dimerization, we observe an increase in the CT character of the excitonically coupled dimers’ excited state in comparison to monomeric ZnP. Furthermore, additional nonradiative relaxation pathways, together with the formation of transient species absent in monomeric systems, were observed for the dimers. We demonstrate that de novo designed proteins can replicate key features of photosynthetic energy conversion, serving as tunable scaffolds for optimizing light-harvesting processes. Ultimately, these systems have promising applications including photovoltaic cells and biomedical treatments based on sustainable materials.
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dc.format.extent
15 p.
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dc.publisher
ACS Publications
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dc.rights
Attribution 4.0 International
*
dc.rights.uri
http://creativecommons.org/licenses/by/4.0/
*
dc.source
RECERCAT (Dipòsit de la Recerca de Catalunya)
dc.subject.other
Química
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dc.title
Unraveling Charge-Transfer States and Their Ultrafast Dynamics in Artificial Light-Harvesting Complexes
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dc.type
info:eu-repo/semantics/article
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dc.description.version
info:eu-repo/semantics/publishedVersion
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dc.relation.projectID
CERCA Program/Generalitat de Catalunya
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dc.relation.projectID
Severo Ochoa Excellence Accreditation CEX2024-001469-S and CEX2019-000925-S funded by MCIU/AEI/10.13039/501100011033
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dc.relation.projectID
D.B. acknowledges PRE-2020-095271 funded by MICIU/AEI/10.13039/501100011033 and FSE+
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dc.relation.projectID
L.G.T.A.D., I.L., S.S., M.C., and E.R. acknowledge the support from the European Research Council under the ERC starting grant [Grant agreement No. 805524 (BioInspired_SolarH2)]
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dc.relation.projectID
State Research Agency/Spanish Ministry of Science, Innovation, and Universities (AEI/10.13039/501100011033; grants PID2023-151584NB-I00 and CEX2021-001202-M)
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dc.relation.projectID
Catalan Agència de Gestió d’Ajuts Universitaris i de Recerca (AGAUR; 2021SGR00671)
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dc.identifier.doi
https://doi.org/10.1021/acsphyschemau.5c00098
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dc.rights.accessLevel
info:eu-repo/semantics/openAccess