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Phenylhydroxycarbene

delete2010-05-12
delete48
PRE
AI
D
Dennis Gerbig
H
Hans Peter Reisenauer
C
Chia‐Hua Wu
D
David Ley
W
Wesley D. Allen *
P
Peter R. Schreiner
DOI:10.1021/ja9107885delete
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摘要

摘要

En 中文
Phenylhydroxycarbene (Ph-C-OH, 1), the parent of all arylhydroxycarbenes, was generated by high-vacuum flash pyrolysis of phenylglyoxylic acid at 600 degrees C and spectroscopically characterized (IR, UV-vis) via immediate matrix isolation in solid Ar at 11 K. The identity of 1 was unequivocally confirmed by the precise agreement between the observed IR bands and (unscaled) anharmonic vibrational frequencies computed from a CCSD(T)/cc-pVDZ quartic force field. The UV-vis spectrum of 1 displays a broad band with maximum absorption at 500 +/- 25 nm (2.5 +/- 0.1 eV) that extends to similar to 640 nm (1.9 eV), in full accord with combined CCSD(T)/cc-pVQZ and EOM-CCSD/cc-pVTZ computations that yield a gas-phase vertical (adiabatic) excitation energy of 2.7 (1.9) eV. Unlike singlet phenylchlorocarbene, 1 does not undergo photochemical ring expansion. Instead, 1 exhibits quantum-mechanical hydrogen tunneling to benzaldehyde underneath a formidable barrier of 28.8 kcal mol(-1), even at cryogenic temperatures. The remarkable hydrogen tunneling mechanism is supported by the temperature insensitivity of the observed half-life (2.5 h) and substantiated by a comparable theoretical half-life (3.3 h) determined from high-level barrier penetration integrals computed along the intrinsic reaction path. As expected, deuteration turns off the tunneling mechanism, so d-1 is stable under otherwise identical conditions.
Keyword:
CORRELATED MOLECULAR CALCULATIONS
COUPLED-CLUSTER METHOD
GAUSSIAN-BASIS SETS
DENSITY FUNCTIONALS
ENERGY GRADIENTS
TUNNELING RATE
WAVE-FUNCTIONS
GROUND-STATE
REARRANGEMENTS
CARBON
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期刊

Journal of the American Chemical Society 封面图
Journal of the American Chemical Society
IF:
15.6
论文数:
20.0W
被引数:
60.2W

机构

U
university system of georgia
学者数:
7.3W
论文数: 6.6W
被引数: 101
U
University of Georgia
学者数:
1.5W
论文数: 1.2W
被引数: 2.9W
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