Intermolecular interactions between halothane and dimethyl ether: a cryosolution infrared and Ab initio study

Chemphyschem. 2007 Jun 4;8(8):1188-98. doi: 10.1002/cphc.200700126.

Abstract

The complex of halothane (CHClBrCF(3)) and dimethyl ether has been investigated experimentally in solutions of liquid krypton using infrared spectroscopy and theoretically using ab initio calculations at the MP2/6-311++G(d,p) level. The formation of a 1:1 complex was experimentally detected. The most stable ab initio geometry found is the one in which the C--H bond of halothane interacts with the oxygen atom of dimethyl ether. The complexes in which the chlorine or the bromine atom of halothane interacts with the oxygen atom of the ether were found to be local energy minima and were less stable by 14.5 and 9.3 kJ mol(-1), respectively, than the global minimum. The formation of a single complex species was observed in the infrared spectra; the standard complexation enthalpy of this complex was determined to be -12.3(8) kJ mol(-1). Analysis of the observed complexation shifts supports the identification of the complex as the hydrogen-bonded species. The C--H stretching vibration of halothane was found to show a redshift upon complexation of 19(2) cm(-1). The infrared intensity ratios epsilon(complex)/epsilon(monomer) for the fundamental and its first overtone were measured to be 6.5(1) and 0.31(1). The frequency shift was analyzed using Morokuma-type analysis, and the infrared intensity ratios were rationalized using a model including the mechanical and electric anharmonicity of the C--H stretching fundamental.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Halothane / chemistry*
  • Isomerism
  • Methyl Ethers / chemistry*
  • Models, Chemical*
  • Models, Molecular
  • Molecular Structure
  • Spectrophotometry, Infrared
  • Thermodynamics
  • Vibration

Substances

  • Methyl Ethers
  • dimethyl ether
  • Halothane