THE MICROWAVE SPECTRUM AND DIPOLE MOMENT OF \~{CIS}-HEX-3-ENE-1,5-DIYNE
Robb J. Wilson, Robert L. Kuczkowski, Ryan L. Fimmen, Robert J. McMahon
Abstract
Robb J. Wilson, Robert L. Kuczkowski, Ryan L. Fimmen, Robert J. McMahon
Abstract
The microwave spectrum of {cis}-hex-3-ene-1,5-diyne has been observed using a Fourier transform spectrometer. Twenty-two transitions were fit to eight constants to 3.9 kHz. The rotational constants have been determined as A = 6955.300(2) MHz. B = 2621.515(1) MHz and C = 1900.734(1) MHz. The constants were calculated using {ab initio} methods at the MP2/6-31$G^{*}$ level as A = 6906.098 MHz, B = 2579.524 MHz, and C= 1878.047MHz, showing reasonable agreement with experiment. The electric dipole moment was measured to be 0.18(1)D. This molecule is the parent molecule of a series of compounds which undergo the `Bergman cyclization’ reaction, and thus serves as a precursor to aromatic compounds. It also has important implications in biological systems, and may exist in the interstellar medium.
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The microwave spectrum of {cis}-hex-3-ene-1,5-diyne has been observed using a Fourier transform spectrometer. Twenty-two transitions were fit to eight constants to 3.9 kHz. The rotational constants have been determined as A = 6955.300(2) MHz. B = 2621.515(1) MHz and C = 1900.734(1) MHz. The constants were calculated using {ab initio} methods at the MP2/6-31$G^{*}$ level as A = 6906.098 MHz, B = 2579.524 MHz, and C= 1878.047MHz, showing reasonable agreement with experiment. The electric dipole moment was measured to be 0.18(1)D. This molecule is the parent molecule of a series of compounds which undergo the `Bergman cyclization’ reaction, and thus serves as a precursor to aromatic compounds. It also has important implications in biological systems, and may exist in the interstellar medium.
Key concepts: Ene reaction, Spectrum (functional analysis), Dipole, Moment (physics), Microwave, Chemistry, Physics, Photochemistry