TY - JOUR
T1 - Metal-metal and metal-hydrogen reactive transition states
AU - Stwalley, William C.
AU - Kleiber, Paul D.
AU - Sando, Kenneth M.
AU - Lyyra, A. Marjatta
AU - Li, Li
AU - Ananthamurthy, Sharath
AU - Bililign, Solomon
AU - Wang, He
AU - Wang, Jiaxiang
AU - Zafiropulos, Vassilios
PY - 1991/12/1
Y1 - 1991/12/1
N2 - Atomic line broadening has traditionally emphasized resonance broadening by like atoms and 'inert perturber' broadening by rare gases and hydrogen. Such methods are ideal for qualitative and quantitative understanding of reactive transition states, including especially non-adiabatic interactions and polarization, orientation and alignment effects. Experiments at Iowa include a variety of such studies with alkali-metal and alkaline-earth metal atoms, e.g. diatomic photodissociation (including state-selected photodissociation through quasibound resonances) and reactive transition-state absorption. In each case theoretical information is available concerning the relevant potential-energy curves (or surfaces) and their couplings, and there are approximate dynamical theories (e.g. orbital locking) to be tested. A summary of recent experimental results and theoretical comparisons emphasizing diatomic photodissociation and its relation to transition state absorption will be presented.
AB - Atomic line broadening has traditionally emphasized resonance broadening by like atoms and 'inert perturber' broadening by rare gases and hydrogen. Such methods are ideal for qualitative and quantitative understanding of reactive transition states, including especially non-adiabatic interactions and polarization, orientation and alignment effects. Experiments at Iowa include a variety of such studies with alkali-metal and alkaline-earth metal atoms, e.g. diatomic photodissociation (including state-selected photodissociation through quasibound resonances) and reactive transition-state absorption. In each case theoretical information is available concerning the relevant potential-energy curves (or surfaces) and their couplings, and there are approximate dynamical theories (e.g. orbital locking) to be tested. A summary of recent experimental results and theoretical comparisons emphasizing diatomic photodissociation and its relation to transition state absorption will be presented.
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U2 - 10.1039/DC9919100097
DO - 10.1039/DC9919100097
M3 - Article
SN - 0301-7249
VL - 91
SP - 97
EP - 110
JO - Faraday Discussions of the Chemical Society
JF - Faraday Discussions of the Chemical Society
ER -