Ab initio and RRKM study of photodissociation of azulene cation.
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A. Mebel | Y. Lee | S. Lin | C. Ni | Y T Lee | Y. Dyakov | S H Lin | Yu A Dyakov | C-K Ni | A M Mebel | S. Lin
[1] J. Pople,et al. Self—Consistent Molecular Orbital Methods. XII. Further Extensions of Gaussian—Type Basis Sets for Use in Molecular Orbital Studies of Organic Molecules , 1972 .
[2] K. Merz,et al. Mechanism of the azulene to naphthalene rearrangement , 1985 .
[3] Parr,et al. Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density. , 1988, Physical review. B, Condensed matter.
[4] A. Becke. Density-functional thermochemistry. III. The role of exact exchange , 1993 .
[5] A. Mebel,et al. Photodissociation of benzene under collision-free conditions: an ab initio/Rice-Ramsperger-Kassel-Marcus study. , 2004, The Journal of chemical physics.
[6] Krishnan Raghavachari,et al. Gaussian-3 theory using coupled cluster energies , 1999 .
[7] L. Curtiss,et al. Gaussian-3 (G3) theory for molecules containing first and second-row atoms , 1998 .
[8] R. Alder,et al. Thermolysis of 2-methylazulene(1-carbon-13) and mechanism of the azulene to naphthalene rearrangement , 1979 .
[9] K. Merz,et al. The C10H8 potential energy surface: the azulene-to-naphthalene rearrangement , 1986 .
[10] William L. Hase,et al. Chemical kinetics and dynamics , 1989 .
[11] M. Naor,et al. Time-dependent mass spectra and breakdown graphs. 17. Naphthalene and phenanthrene , 1993 .
[12] L. T. Scott. Azulene-to-naphthalene rearrangement: a comment on the kinetics , 1985 .
[13] W. J. Hart. Density functional calculations on the loss of acetylene from the naphthalene radical cation , 2002 .
[14] L. T. Scott,et al. Automerization of naphthalene , 1977 .
[15] Y. Ling,et al. Energetics of Acetylene Loss from C14H10•+ Cations: A Density Functional Calculation , 1997 .
[16] S. Leach,et al. Deuterium isotope effects in the photofragmentation of naphthalene monocations , 1993 .
[17] K. Merz,et al. Thermal rearrangements of C10H8 species; benzvalene analogues and the automerization of naphthalene , 1986 .
[18] P. J. Robinson. Unimolecular reactions , 1972 .
[19] A. Marshall,et al. Photodissociation of Gas-Phase Polycylic Aromatic Hydrocarbon Cations , 1998 .
[20] H. Baumgärtel,et al. The photofragmentation of naphthalene and azulene monocations in the energy range 7–22 eV , 1992 .
[21] A. Becke. Density-functional thermochemistry. II: The effect of the Perdew-Wang generalized-gradient correlation correction , 1992 .
[22] Henry Eyring,et al. Basic chemical kinetics , 1980 .
[23] Axel D. Becke,et al. Density-functional thermochemistry. I. The effect of the exchange-only gradient correction , 1992 .
[24] L. T. Scott,et al. Azulene thermal rearrangements. Carbon-13 labeling studies of automerization and isomerization to naphthalene , 1981 .
[25] H. Schwarz,et al. Structures of the C8H6+ Cation Formed upon Loss of Acetylene from Ionized Naphthalene , 1999 .
[26] Krishnan Raghavachari,et al. GAUSSIAN-3 THEORY USING DENSITY FUNCTIONAL GEOMETRIES AND ZERO-POINT ENERGIES , 1999 .
[27] A. Mebel,et al. Acetylene Elimination in Photodissociation of Neutral Azulene and Its Cation: An Ab Initio and RRKM Study , 2006 .
[28] D. Shriver,et al. Surface-induced alkyl migration reactions in metal carbonyls , 1980 .
[29] C. Lifshitz,et al. Time-Resolved Photodissociation (TRPD) of the Naphthalene and Azulene Cations in an Ion Trap/Relfectron , 2000 .