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Timing the escape of a photoexcited electron from a molecular cage

Timing the escape of a photoexcited electron from a molecular cage
Timing the escape of a photoexcited electron from a molecular cage
Charge transfer is fundamentally dependent on the overlap of the orbitals comprising the transport pathway. This has key implications for molecular, nanoscale, and quantum technologies, for which delocalization (and decoherence) rates are essential figures of merit. Here, we apply the core hole clock technique—an energy-domain variant of ultrafast spectroscopy—to probe the delocalization of a photoexcited electron inside a closed molecular cage, namely the Ar 2p54s1 state of Ar@C60. Despite marginal frontier orbital mixing in the ground configuration, almost 80% of the excited state density is found outside the buckyball due to the formation of a markedly diffuse hybrid orbital. Far from isolating the intracage excitation, the surrounding fullerene is instead a remarkably efficient conduit for electron transfer: we measure characteristic delocalization times of 6.6 ± 0.3 fs and ≲ 500 attoseconds, respectively, for a 3D Ar@C60 film and a 2D monolayer on Ag(111).
2041-1723
Fields, Connor
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Foerster, Aleksandra
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Ghaderzadeh, Sadegh
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Popov, Ilya
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Huynh, Bang
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Junqueira, Filipe
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James, Tyler
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Alonso perez, Sofia
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Duncan, David A.
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Lee, Tien-Lin
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Wang, Yitao
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Bloodworth, Sally
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Hoffman, Gabriela
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Walkey, Mark
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Whitby, Richard J.
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Levitt, Malcolm H.
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Kiraly, Brian
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O’shea, James N.
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Besley, Elena
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Moriarty, Philip
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Fields, Connor
dad202b7-1f57-417f-bdd6-9cf7b38f7bde
Foerster, Aleksandra
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Ghaderzadeh, Sadegh
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Popov, Ilya
99bb47d7-09e9-45de-9415-aa2ec8e5cbaf
Huynh, Bang
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Junqueira, Filipe
88e7052d-9f62-4bef-9721-5012bb73cc53
James, Tyler
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Alonso perez, Sofia
ddcee55a-b23d-40ff-ae02-1abb2ffd3c0b
Duncan, David A.
5e739d4f-3719-4071-8f33-f746eec5829e
Lee, Tien-Lin
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Wang, Yitao
a4731d2a-8f30-4fb5-85a5-062ec26efcca
Bloodworth, Sally
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Hoffman, Gabriela
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Walkey, Mark
432139de-52cb-4e28-9ad0-b254e0523775
Whitby, Richard J.
45632236-ab00-4ad0-a02d-6209043e818b
Levitt, Malcolm H.
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Kiraly, Brian
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O’shea, James N.
23a42146-f019-4c6c-9ea4-55c8a018c098
Besley, Elena
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Moriarty, Philip
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Fields, Connor, Foerster, Aleksandra, Ghaderzadeh, Sadegh, Popov, Ilya, Huynh, Bang, Junqueira, Filipe, James, Tyler, Alonso perez, Sofia, Duncan, David A., Lee, Tien-Lin, Wang, Yitao, Bloodworth, Sally, Hoffman, Gabriela, Walkey, Mark, Whitby, Richard J., Levitt, Malcolm H., Kiraly, Brian, O’shea, James N., Besley, Elena and Moriarty, Philip (2025) Timing the escape of a photoexcited electron from a molecular cage. Nature Communications, 16 (1), [5062]. (doi:10.1038/s41467-025-60260-z).

Record type: Article

Abstract

Charge transfer is fundamentally dependent on the overlap of the orbitals comprising the transport pathway. This has key implications for molecular, nanoscale, and quantum technologies, for which delocalization (and decoherence) rates are essential figures of merit. Here, we apply the core hole clock technique—an energy-domain variant of ultrafast spectroscopy—to probe the delocalization of a photoexcited electron inside a closed molecular cage, namely the Ar 2p54s1 state of Ar@C60. Despite marginal frontier orbital mixing in the ground configuration, almost 80% of the excited state density is found outside the buckyball due to the formation of a markedly diffuse hybrid orbital. Far from isolating the intracage excitation, the surrounding fullerene is instead a remarkably efficient conduit for electron transfer: we measure characteristic delocalization times of 6.6 ± 0.3 fs and ≲ 500 attoseconds, respectively, for a 3D Ar@C60 film and a 2D monolayer on Ag(111).

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Accepted/In Press date: 16 May 2025
Published date: 31 May 2025

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Local EPrints ID: 502983
URI: http://eprints.soton.ac.uk/id/eprint/502983
ISSN: 2041-1723
PURE UUID: 15dc806e-8734-44d3-84c3-f99a7347b236
ORCID for Sally Bloodworth: ORCID iD orcid.org/0000-0003-2219-3635
ORCID for Richard J. Whitby: ORCID iD orcid.org/0000-0002-9891-5502
ORCID for Malcolm H. Levitt: ORCID iD orcid.org/0000-0001-9878-1180

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Date deposited: 15 Jul 2025 16:53
Last modified: 22 Aug 2025 01:49

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Contributors

Author: Connor Fields
Author: Aleksandra Foerster
Author: Sadegh Ghaderzadeh
Author: Ilya Popov
Author: Bang Huynh
Author: Filipe Junqueira
Author: Tyler James
Author: Sofia Alonso perez
Author: David A. Duncan
Author: Tien-Lin Lee
Author: Yitao Wang
Author: Gabriela Hoffman
Author: Mark Walkey
Author: Brian Kiraly
Author: James N. O’shea
Author: Elena Besley
Author: Philip Moriarty

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