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Open AccessJournal ArticleDOI

Ultrafast dynamics of formation and autodetachment of a dipole-bound state in an open-shell π-stacked dimer anion

James N. Bull, +2 more
- 26 Jul 2016 - 
- Vol. 7, Iss: 8, pp 5352-5361
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TLDR
In this article, the authors used frequency, angle, and time-resolved photoelectron imaging together with electronic structure calculations to characterise the π-stacked coenzyme Q0 dimer radical anion and its exited state dynamics.
Abstract
Isolated π-stacked dimer radical anions present the simplest model of an excess electron in a π-stacked environment. Here, frequency-, angle-, and time-resolved photoelectron imaging together with electronic structure calculations have been used to characterise the π-stacked coenzyme Q0 dimer radical anion and its exited state dynamics. In the ground electronic state, the excess electron is localised on one monomer with a planar para-quinone ring, which is solvated by the second monomer in which carbonyl groups are bent out of the para-quinone ring plane. Through the π-stacking interaction, the dimer anion exhibits a number of charge-transfer (intermolecular) valence-localised resonances situated in the detachment continuum that undergo efficient internal conversion to a cluster dipole-bound state (DBS) on a ∼60 fs timescale. In turn, the DBS undergoes vibration-mediated autodetachment on a 2.0 ± 0.2 ps timescale. Experimental vibrational structure and supporting calculations assign the intermolecular dynamics to be facilitated by vibrational wagging modes of the carbonyl groups on the non-planar monomer. At photon energies ∼0.6–1.0 eV above the detachment threshold, a competition between photoexcitation of an intermolecular resonance leading to the DBS, and photoexcitation of an intramolecular resonance leading to monomer-like dynamics further illustrates the π-stacking specific dynamics. Overall, this study provides the first direct observation of both internal conversion of resonances into a DBS, and characterisation of a vibration-mediated autodetachment in real-time.

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Journal ArticleDOI

Ultrafast dynamics of temporary anions probed through the prism of photodetachment

TL;DR: In this article, the effect of chemical substitutions of the para-quinone electrophore on the dynamics of resonances is discussed, increasing the conjugation leads to a greatly enhanced ability for resonances to decay to the ground electronic state of the radical quinone anion.
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On the formation of anions: frequency-, angle-, and time-resolved photoelectron imaging of the menadione radical anion†

TL;DR: Frequency, angle, and time-resolved photoelectron imaging of gas-phase menadione (vitamin K3) radical anions is used to show that quasi-bound resonances of the anion can act as efficient doorway states to produce metastable ground electronic state anions on a sub-picosecond timescale.
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Observation and ultrafast dynamics of a nonvalence correlation-bound state of an anion

TL;DR: A direct spectroscopic observation of this nonvalence correlation-bound state (CBS) in the para-toluquinone trimer cluster anion shows that photodetachment of the CBS produces a narrow and highly anisotropic photoelectron distribution, consistent with detachment from an s-like orbital.
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High-resolution photoelectron imaging and resonant photoelectron spectroscopy via noncovalently bound excited states of cryogenically cooled anions

TL;DR: Noncovalently bound excited states of anions have led to the development of resonant photoelectron spectroscopy with rich vibrational and dynamical information.
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TL;DR: In this article, a frequency and angle-resolved photoelectron imaging study of the 9-anthracenyl anion generated through collision induced dissociation (CID) of its electrosprayed deprotonated anthracene carboxylic acid anion is presented.
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