ON THE N2-HE POTENTIAL-ENERGY SURFACE

被引:40
作者
BENEVENTI, L
CASAVECCHIA, P
VOLPI, GG
WONG, CCK
MCCOURT, FRW
COREY, GC
LEMOINE, D
机构
[1] UNIV LILLE FLANDRES ARTOIS,SPECT MOLEC DIATOM LAB,URA 779,F-59655 VILLENEUVE DASCQ,FRANCE
[2] UNIV WATERLOO,GUELPH WATERLOO CTR GRAD WORK CHEM,WATERLOO N2L 3G1,ONTARIO,CANADA
[3] UNIV WATERLOO,DEPT CHEM,WATERLOO N2L 3G1,ONTARIO,CANADA
[4] UNIV MONTREAL,DEPT CHIM,MONTREAL H3C 3J7,QUEBEC,CANADA
关键词
D O I
10.1063/1.461604
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A detailed comparison of the predictive powers of two recently determined empirical and two recently proposed theoretical potential energy surfaces for the N2-He interaction has been carried out. In particular, the following properties have been tested: at the microscopic level, total and state-to-state differential cross sections and absolute total integral cross sections, while at the macroscopic level, interaction second virial, diffusion, viscosity, and thermal conductivity coefficients, as well as the rotational relaxation time, depolarized Rayleigh spectral collision broadening, and shear viscosity and thermal conductivity field-effect data in N2-He mixtures. Exact calculations have been employed, from the close-coupling method for treating scattering data at low energies to the classical trajectory method with second-order corrections to compute the effective cross sections that determine the bulk transport and relaxation phenomena. The empirical exponential-spline-Morse-spline-van der Waals surface [J. Chem. Phys. 85, 7011 (1986)], closely followed by the model Bowers-Tang-Toennies surface [J. Chem. Phys. 88, 5465 (1988)], gives better simultaneous agreement with the scattering data, the second virial coefficient data, the bulk transport data, and the depolarized Rayleigh collision-broadening data, which are properties sensitive to the spherical component of the interaction and to the anisotropy of the low repulsive wall. None of the potential surfaces examined here includes a dependence upon the vibrational stretching coordinate of the N2 molecule, since none of the data employed in the fitting is sensitive to this coordinate. The two theoretical model potentials, especially that based upon an earlier Hartree-Fock plus damped dispersion model surface [J. Phys. Chem. 88, 2036 (1984)], gives better agreement with the rotational relaxation and field-effect data, which are properties sensitive to the anisotropy of the high-repulsive wall. It is established that the exponential-spline-Morse-spline-van der Waals and Bowers-Tang-Toennies surfaces are on the whole the more reliable of the empirical and model surfaces examined, respectively. It is concluded that the optimum N2-He potential energy surface should be a blend of the empirical exponential-spline-Morse-spline-van der Waals and of the two model surfaces.
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收藏
页码:5827 / 5845
页数:19
相关论文
共 67 条
[51]   A COMPARISON OF THE PREDICTIONS OF VARIOUS MODEL N2-HE POTENTIAL-ENERGY SURFACES WITH EXPERIMENT [J].
MCCOURT, FR ;
FUCHS, RR ;
THAKKAR, AJ .
JOURNAL OF CHEMICAL PHYSICS, 1984, 80 (11) :5561-5567
[52]   QUANTUM-MECHANICAL CALCULATIONS OF EFFECTIVE COLLISION CROSS-SECTIONS FOR HE-N2 INTERACTION .1. VISCOMAGNETIC EFFECT [J].
MCCOURT, FRW ;
VESOVIC, V ;
WAKEHAM, WA ;
DICKINSON, AS ;
MUSTAFA, M .
MOLECULAR PHYSICS, 1991, 72 (06) :1347-1364
[53]   NEW ANISOTROPIC POTENTIAL-ENERGY SURFACES FOR N2-NE AND N2-AR - THE USE OF HARTREE-FOCK SCF CALCULATIONS AND ANISOTROPIC LONG-RANGE DISPERSION COEFFICIENTS [J].
MCCOURT, FRW ;
VANDUIJNEVELDT, FB ;
VANDAM, T ;
FUCHS, RR .
MOLECULAR PHYSICS, 1987, 61 (01) :109-130
[54]   ANISOTROPIC POTENTIALS AND DAMPING OF RAINBOW AND DIFFRACTION OSCILLATIONS IN DIFFERENTIAL CROSS-SECTIONS [J].
PACK, RT .
CHEMICAL PHYSICS LETTERS, 1978, 55 (02) :197-201
[55]   THE HELIUM-HYDROGEN FLUORIDE POTENTIAL SURFACE [J].
RODWELL, WR ;
LAM, LTSF ;
WATTS, RO .
MOLECULAR PHYSICS, 1981, 44 (01) :225-240
[56]   INTERMOLECULAR FORCES VIA HYBRID HARTREE-FOCK PLUS DAMPED DISPERSION (HFD) ENERGY CALCULATIONS - SYSTEMS WITH SMALL NONSPHERICITY - AR-H2, NE-H2, AND HE-H2 [J].
RODWELL, WR ;
SCOLES, G .
JOURNAL OF PHYSICAL CHEMISTRY, 1982, 86 (07) :1053-1059
[57]  
SCHRAMM B, 1983, CHEM PHYS LETT, V98, P171
[58]   2-BODY, SPHERICAL, ATOM-ATOM, AND ATOM-MOLECULE INTERACTION ENERGIES [J].
SCOLES, G .
ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 1980, 31 :81-96
[59]   NEW COMBINING RULES FOR WELL PARAMETERS AND SHAPES OF THE VAN DER WAALS POTENTIAL OF MIXED RARE-GAS SYSTEMS [J].
TANG, KT ;
TOENNIES, JP .
ZEITSCHRIFT FUR PHYSIK D-ATOMS MOLECULES AND CLUSTERS, 1986, 1 (01) :91-101
[60]   AN IMPROVED SIMPLE-MODEL FOR THE VANDERWAALS POTENTIAL BASED ON UNIVERSAL DAMPING FUNCTIONS FOR THE DISPERSION COEFFICIENTS [J].
TANG, KT ;
TOENNIES, JP .
JOURNAL OF CHEMICAL PHYSICS, 1984, 80 (08) :3726-3741