Timing the Escape of a Caged Electron

Fuente: arXiv
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Main Authors: Fields, Connor, Foerster, Aleksandra, Ghaderzadeh, Sadegh, Popov, Ilya, Huynh, Bang, Junqueira, Filipe, James, Tyler, Perez, Sofia Alonso, 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, Moriarty, Philip
Format: Preprint
Published: 2025
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author Fields, Connor
Foerster, Aleksandra
Ghaderzadeh, Sadegh
Popov, Ilya
Huynh, Bang
Junqueira, Filipe
James, Tyler
Perez, Sofia Alonso
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
Moriarty, Philip
author_facet Fields, Connor
Foerster, Aleksandra
Ghaderzadeh, Sadegh
Popov, Ilya
Huynh, Bang
Junqueira, Filipe
James, Tyler
Perez, Sofia Alonso
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
Moriarty, Philip
contents 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 $\pm$ 0.3 fs and $\lesssim$ 500 attoseconds, respectively, for a 3D Ar@C60 film and a 2D monolayer on Ag(111).
format Preprint
id arxiv_https___arxiv_org_abs_2504_06733
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Timing the Escape of a Caged Electron
Fields, Connor
Foerster, Aleksandra
Ghaderzadeh, Sadegh
Popov, Ilya
Huynh, Bang
Junqueira, Filipe
James, Tyler
Perez, Sofia Alonso
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
Moriarty, Philip
Chemical Physics
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 $\pm$ 0.3 fs and $\lesssim$ 500 attoseconds, respectively, for a 3D Ar@C60 film and a 2D monolayer on Ag(111).
title Timing the Escape of a Caged Electron
topic Chemical Physics
url https://arxiv.org/abs/2504.06733