Margaret E. Greenslade
University of Pennsylvania
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Featured researches published by Margaret E. Greenslade.
Journal of Chemical Physics | 2004
James B. Davey; Margaret E. Greenslade; Mark D. Marshall; Marsha I. Lester; Martyn D. Wheeler
A hydrogen-bonded complex between the hydroxyl radical and acetylene has been stabilized in the reactant channel well leading to the addition reaction and characterized by infrared action spectroscopy in the OH overtone region. Analysis of the rotational band structure associated with the a-type transition observed at 6885.53(1) cm(-1) (origin) reveals a T-shaped structure with a 3.327(5) A separation between the centers of mass of the monomer constituents. The OH (v = 1) product states populated following vibrational predissociation show that dissociation proceeds by two mechanisms: intramolecular vibrational to rotational energy transfer and intermolecular vibrational energy transfer. The highest observed OH product state establishes an upper limit of 956 cm(-1) for the stability of the pi-type hydrogen-bonded complex. The experimental results are in good accord with the intermolecular distance and well depth at the T-shaped minimum energy configuration obtained from complementary ab initio calculations, which were carried out at the restricted coupled cluster singles, doubles, noniterative triples level of theory with extrapolation to the complete basis set limit.
Journal of Chemical Physics | 2003
Dragana Č. Radenović; André J. A. van Roij; Dmitri A. Chestakov; André T. J. B. Eppink; J. J. ter Meulen; David H. Parker; Mark P. J. van der Loo; Gerrit C. Groenenboom; Margaret E. Greenslade; Marsha I. Lester
The photodissociation dynamics of state selected OD radicals has been examined at 243 and 226 nm using velocity map imaging to probe the angle–speed distributions of the D(2S) and O(3P2) products. Both experiment and complementary first principle calculations demonstrate that photodissociation occurs by promotion of OD from high vibrational levels of the ground X 2Π state to the repulsive 1 2Σ− state.
Journal of Chemical Physics | 2005
Erika L. Derro; Ilana B. Pollack; Logan P. Dempsey; Margaret E. Greenslade; Yuxiu Lei; Dragana Č. Radenović; Marsha I. Lester
Fluorescence-dip infrared spectroscopy, an UV-IR double-resonance technique, is employed to characterize the line positions, linewidths, and corresponding lifetimes of highly predissociative rovibrational levels of the excited A (2)Sigma(+) electronic state of the OH radical. Various lines of the 4 <--2 overtone transition in the excited A (2)Sigma(+) state are observed, from which the rotational, centrifugal distortion, and spin-rotation constants for the A (2)Sigma(+) (v = 4) state are determined, along with the vibrational frequency for the overtone transition. Homogeneous linewidths of 0.23-0.31 cm(-1) full width at half maximum are extracted from the line profiles, demonstrating that the N = 0 to 7 rotational levels of the OH A (2)Sigma(+) (v = 4) state undergo rapid predissociation with lifetimes of < or =23 ps. The experimental linewidths are in near quantitative agreement with first-principles theoretical predictions.
Journal of Chemical Physics | 2005
Margaret E. Greenslade; Marsha I. Lester; Dragana Č. Radenović; André J. A. van Roij; David H. Parker
Journal of Chemical Physics | 2004
Mark D. Marshall; James B. Davey; Margaret E. Greenslade; Marsha I. Lester
Chemical Physics Letters | 2002
Margaret E. Greenslade; Maria Tsiouris; R. Timothy Bonn; Marsha I. Lester
publisher | None
author
Archive | 2004
Margaret E. Greenslade; James B. Davey; Mark D. Marshall; Marsha I. Lester
Archive | 2003
James B. Davey; Margaret E. Greenslade; Marsha I. Lester
Archive | 2003
Margaret E. Greenslade; Marsha I. Lester; Dragana Č. Radenović; André J. A. van Roij; David H. Parker