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Ultrafast Through-Space Electronic Energy Transfer in Molecular Dyads Built around Dynamic Spacer Units

Ziessel, Raymond; Stachelek, Patrycja; Harriman, Anthony; Hedley, Gordon J.; Roland, Thomas; Ruseckas, Arvydas; Samuel, Ifor D.W.

Authors

Raymond Ziessel

Profile image of Patrycja Brook

Dr Patrycja Brook patrycja.stachelek@durham.ac.uk
Royal Society University Research Fellow

Anthony Harriman

Gordon J. Hedley

Thomas Roland

Arvydas Ruseckas

Ifor D.W. Samuel



Abstract

A pair of complementary molecular dyads have been synthesized around a 1,2-diaminocyclohexyl spacer that itself undergoes ring inversion. Despite these conformational exchange processes, the donor and acceptor occupy quite restricted spatial regions, and they are not interchangeable. The donor and acceptor pair comprise disparate boron dipyrromethene dyes selected to display favorable electronic energy transfer (EET). Steady-state emission spectroscopy confirms that through-space EET from donor to acceptor is almost quantitative, aided by the relatively short separations. Ultrafast time-resolved fluorescence spectroscopy has allowed determination of the rates of EET for both dyads. Surprisingly, in view of the close proximity of donor and acceptor (center-to-center separations less than 20 Å), the EET dynamics are well-accounted for in terms of the computed molecular conformations and conventional Förster theory. One dyad appears as a single family of conformations, but EET for the second dyad corresponds to dual-exponential kinetics. In this latter case, an intramolecular hydrogen bond helps stabilize an open geometry, wherein EET is relatively slow.

Citation

Ziessel, R., Stachelek, P., Harriman, A., Hedley, G. J., Roland, T., Ruseckas, A., & Samuel, I. D. (2018). Ultrafast Through-Space Electronic Energy Transfer in Molecular Dyads Built around Dynamic Spacer Units. The Journal of Physical Chemistry A, 122(18), 4437-4447. https://doi.org/10.1021/acs.jpca.8b02415

Journal Article Type Article
Acceptance Date Mar 17, 2018
Online Publication Date Apr 17, 2018
Publication Date May 10, 2018
Deposit Date Dec 7, 2020
Journal The Journal of Physical Chemistry A
Print ISSN 1089-5639
Electronic ISSN 1520-5215
Publisher American Chemical Society
Peer Reviewed Peer Reviewed
Volume 122
Issue 18
Pages 4437-4447
DOI https://doi.org/10.1021/acs.jpca.8b02415
Public URL https://durham-repository.worktribe.com/output/1255989