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RESEARCH PRODUCT

Intermolecular potential and rovibrational states of the H2O–D2 complex

Miles James WeidaDavid J. NesbittAlexandre FaureYohann ScribanoJoanna R. FairAd Van Der Avoird

subject

ROTATION-TUNNELING STATESWater dimerAb initioGeneral Physics and AstronomyHYDROGEN MOLECULES01 natural sciencesEIGENVALUESAMORPHOUS ICETotal angular momentum quantum numberEXCITATION0103 physical sciencesGRID HAMILTONIAN METHODIsotopologuePhysical and Theoretical ChemistryTheoretical ChemistryWave function010303 astronomy & astrophysicsVIBRATION010304 chemical physicsChemistryIntermolecular forceRotational–vibrational spectroscopyAB-INITIO TREATMENTWATER DIMERAtomic physicsCOUPLED 6-DIMENSIONAL CALCULATIONSGround state

description

International audience; A five-dimensional intermolecular potential for H2O-D-2 was obtained from the full nine-dimensional ab initio potential surface of Valiron et al. [P. Valiron, M. Wernli, A. Faure, L. Wiesenfeld, C. Rist, S. Kedzuch, J. Noga, J. Chem. Phys. 129 (2008) 134306] by averaging over the ground state vibrational wave functions of H2O and D-2. On this five-dimensional potential with a well depth D-e of 232.12 cm (1) we calculated the bound rovibrational levels of H2O-D-2 for total angular momentum J = 0-3. The method used to compute the rovibrational levels is similar to a scattering approach-it involves a basis of coupled free rotor wave functions for the hindered internal rotations and the overall rotation of the dimer-while it uses a discrete variable representation of the intermolecular distance coordinate R. The basis was adapted to the permutation symmetry associated with the para/ortho (p/o) nature of both H2O and D-2, as well as to inversion symmetry. As expected, the H2O-D-2 dimer is more strongly bound than its H2O-H-2 isotopologue [cf. A. van der Avoird, D. J. Nesbitt, J. Chem. Phys. 134 (2011) 044314], with dissociation energies D-0 of 46.10, 50.59, 67.43, and 73.53 cm (1) for pH(2)O-oD(2), oH(2)O-oD(2), pH(2)O-pD(2), and oH(2)O-pD(2). A rotationally resolved infrared spectrum of H2O-D2 was measured in the frequency region of the H2O bend mode. The ab initio calculated values of the rotational and distortion constants agree well with the values extracted from this spectrum.

https://doi.org/10.1016/j.chemphys.2011.06.008