Vibrational branching ratios in the photoelectron spectra of N2 and CO: interference and diffraction effects
Entity
UAM. Departamento de QuímicaPublisher
Royal Society of ChemistryDate
2012-08-21Citation
10.1039/C2CP40693D
Physical Chemistry Chemical Physics 4.31(2012): 10853-10871
ISSN
1463-9076 (print); 1463-9084 (online)DOI
10.1039/C2CP40693DFunded by
We thank Mare Nostrum BSC, Cineca and CCC-UAM for allocation of computer time. Work supported by the MICINN project Nos. FIS2010-15127, ACI2008-0777 and CSD 200700010 (Spain), the ERA-Chemistry project PIM2010EEC00751, the European COST Action CM0702, the Marie Curie ITN CORINF (EU), and the XCHEM Advanced Grant 290853 of the European Research CouncilProject
Gobierno de España. FIS2010-15127; Gobierno de España. ACI2008-0777; Gobierno de España. CSD 200700010; info:eu-repo/grantAgreement/EC/FP7/290853; info:eu-repo/grantAgreement/EC/FP7/264951Editor's Version
http://dx.doi.org/10.1039/c2cp40693dSubjects
Photoionization; Molecular geometry; CO; Photoelectron spectra; QuímicaRights
© 2012 Royal Society of ChemistryAbstract
We present a detailed account of existing theoretical methods specially designed to provide vibrationally resolved photoionization cross sections of simple molecules within the Born-Oppenheimer approximation, with emphasis on newly developed methods based on density functional theory. The performance of these methods is shown for the case of N 2 and CO photoionization. Particular attention is paid to the region of high photon energies, where the electron wavelength is comparable to the bond length and, therefore, two-center interferences and diffraction are expected to occur. As shown in a recent work [Canton et al., Proc. Natl. Acad. Sci. U. S. A., 2011, 108, 7302-7306], the main experimental difficulty, which is to extract the relatively small diffraction features from the rapidly decreasing cross section, can be easily overcome by determining ratios of vibrationally resolved photoelectron spectra and existing theoretical calculations. From these ratios, one can thus get direct information about the molecular geometry. In this work, results obtained in a wide range of photon energies and for many different molecular orbitals of N 2 and CO are discussed and compared with the available experimental measurements. From this comparison, limitations and further possible improvements of the existing theoretical methods are discussed. The new results presented in the manuscript confirm that the conclusions reported in the above reference are of general validity
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Google Scholar:Plésiat, Etienne
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Decleva, Piero
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Martín García, Fernando
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