Timing the escape of a photoexcited electron from a molecular cage
Abstract
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 2p 54s 1 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).
Article Details
Authors (20)
Connor Fields
Aleksandra Foerster
Division of Intramural Research (DIR), National Library of Medicine (NLM), National Institutes of Health (NIH) 1 , Bethesda, Maryland 20894,
Sadegh Ghaderzadeh
Ilya Popov
Bang Huynh
Filipe Junqueira
Tyler James
Sofia Alonso Perez
David A. Duncan
Tien-Lin Lee
Diamond Light Source Ltd., Diamond House
Yitao Wang
School of Life Sciences, Westlake University
Sally Bloodworth
School of Chemistry and Chemical Engineering, University of Southampton 2 , Southampton SO17 1BJ,
Gabriela Hoffman
School of Chemistry and Chemical Engineering, University of Southampton 2 , Southampton SO17 1BJ,
Mark Walkey
Richard J. Whitby
School of Chemistry and Chemical Engineering, University of Southampton 2 , Southampton SO17 1BJ,
Malcolm H. Levitt
School of Chemistry, University of Southampton , Southampton SO17 1BJ,
Brian Kiraly
James N. O’Shea
School of Physics & Astronomy
Elena Besley
Philip Moriarty