| Literature DB >> 27941808 |
K Wang1,2, P Murahari2, K Yokoyama2,3, J S Lord3, F L Pratt3, J He1, L Schulz1, M Willis1, J E Anthony4, N A Morley5, L Nuccio6, A Misquitta2, D J Dunstan2, K Shimomura7, I Watanabe8, S Zhang1, P Heathcote9, A J Drew1,2,3.
Abstract
Photochemical reactions are essential to a large number of important industrial and biological processes. A method for monitoring photochemical reaction kinetics and the dynamics of molecular excitations with spatial resolution within the active molecule would allow a rigorous exploration of the pathway and mechanism of photophysical and photochemical processes. Here we demonstrate that laser-excited muon pump-probe spin spectroscopy (photo-μSR) can temporally and spatially map these processes with a spatial resolution at the single-carbon level in a molecule with a pentacene backbone. The observed time-dependent light-induced changes of an avoided level crossing resonance demonstrate that the photochemical reactivity of a specific carbon atom is modified as a result of the presence of the excited state wavefunction. This demonstrates the sensitivity and potential of this technique in probing molecular excitations and photochemistry.Entities:
Year: 2016 PMID: 27941808 DOI: 10.1038/nmat4816
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 47.656