Integrated experimental and computational results help to clarify the nature of the intermolecular interactions in a simple, isolated pi-stacked dimer prepared in a molecular beam. The properties of bimolecular anisole complexes are examined and discussed in terms of the local/supramolecular nature of the electronic wavefunctions. Experimental resonance-enhanced multi-photon ionization spectra of clusters with different isotopic compositions confirmed the fundamentally localized nature of the S1 - S0 electronic transition. A detail analysis of the experimental results however shows the existence of non-negligible excitonic coupling for the excited-state wavefunctions leading to the doubling of the single-molecule vibronic levels in the S1 state, with a splitting of about 30 cm-1. Theoretical simulation of the vibrationally resolved electronic spectra and computations of the excitonic coupling convincingly support the experimental findings. The overall combined experimental/theoretical study allows a detailed description of the stacking interaction in the anisole dimer.

Integrated experimental and computational spectroscopy study on π-stacking interaction: The anisole dimer / N.Schiccheri; M. Pasquini; G. Piani; G.Pietraperzia; M.Becucci; M.Biczysko; J.Bloino; V.Barone. - In: PHYSICAL CHEMISTRY CHEMICAL PHYSICS. - ISSN 1463-9076. - STAMPA. - 12:(2010), pp. 13547-13554. [10.1039/c002992k]

Integrated experimental and computational spectroscopy study on π-stacking interaction: The anisole dimer

SCHICCHERI, NICOLA;PASQUINI, MASSIMILIANO;PIANI, GIOVANNI;PIETRAPERZIA, GIANGAETANO;BECUCCI, MAURIZIO;
2010

Abstract

Integrated experimental and computational results help to clarify the nature of the intermolecular interactions in a simple, isolated pi-stacked dimer prepared in a molecular beam. The properties of bimolecular anisole complexes are examined and discussed in terms of the local/supramolecular nature of the electronic wavefunctions. Experimental resonance-enhanced multi-photon ionization spectra of clusters with different isotopic compositions confirmed the fundamentally localized nature of the S1 - S0 electronic transition. A detail analysis of the experimental results however shows the existence of non-negligible excitonic coupling for the excited-state wavefunctions leading to the doubling of the single-molecule vibronic levels in the S1 state, with a splitting of about 30 cm-1. Theoretical simulation of the vibrationally resolved electronic spectra and computations of the excitonic coupling convincingly support the experimental findings. The overall combined experimental/theoretical study allows a detailed description of the stacking interaction in the anisole dimer.
2010
12
13547
13554
N.Schiccheri; M. Pasquini; G. Piani; G.Pietraperzia; M.Becucci; M.Biczysko; J.Bloino; V.Barone
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/595015
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