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An ab initio and matrix isolation infrared study of the 1:1 C2H2–CHCl3 adduct
Authors:E D Jemmis  K T Giju  K Sundararajan  K Sankaran  V Vidya  K S Viswanathan  J Leszczynski
Institution:

a School of Chemistry, University of Hyderabad, Hyderabad 500 046, India

b Materials Chemistry Division, Indira Gandhi Centre for Atomic Research, Kalpakkam 603 102, India

c Department of Chemistry, Jackson State University, Jackson, MS 39217, USA

Abstract:The details of weak C–Hcdots, three dots, centeredπ interactions that control several inter and intramolecular structures have been studied experimentally and theoretically for the 1:1 C2H2–CHCl3 adduct. The adduct was generated by depositing acetylene and chloroform in an argon matrix and a 1:1 complex of these species was identified using infrared spectroscopy. Formation of the adduct was evidenced by shifts in the vibrational frequencies compared to C2H2 and CHCl3 species. The molecular structure, vibrational frequencies and stabilization energies of the complex were predicted at the MP2/6-311+G(d,p) and B3LYP/6-311+G(d,p) levels. Both the computational and experimental data indicate that the C2H2–CHCl3 complex has a weak hydrogen bond involving a C–Hcdots, three dots, centeredπ interaction, where the C2H2 acts as a proton acceptor and the CHCl3 as the proton donor. In addition, there also appears to be a secondary interaction between one of the chlorine atoms of CHCl3 and a hydrogen in C2H2. The combination of the C–Hcdots, three dots, centeredπ interaction and the secondary Clcdots, three dots, centeredH interaction determines the structure and the energetics of the C2H2–CHCl3 complex. In addition to the vibrational assignments for the C2H2–CHCl3 complex we have also observed and assigned features owing to the proton accepting C2H2 submolecule in the acetylene dimer.
Keywords:Ab initio calculations  Matrix isolation  Infrared spectroscopy  Acetylene  Chloroform
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