THE A-TYPE K=0 MICROWAVE-SPECTRUM OF THE METHANOL DIMER

被引:35
作者
LOVAS, FJ
BELOV, SP
TRETYAKOV, MY
STAHL, W
SUENRAM, RD
机构
[1] Molecular Physics Division, National Institute of Standards and Technology, Gaithersburg
[2] Institute of Applied Physics, Nizhny Novgorod
[3] Institute for Physical Chemistry, University of Kiel, Kiel
关键词
D O I
10.1006/jmsp.1995.1086
中图分类号
O64 [物理化学(理论化学)、化学物理学]; O56 [分子物理学、原子物理学];
学科分类号
070203 ; 070304 ; 081704 ; 1406 ;
摘要
The rotational spectrum of(CH3OH)(2) has been observed in the region 4-22 GHz with pulsed-beam Fabry-Perot cavity Fourier-transform microwave spectrometers at NIST and at the University of Kiel. Each a-type R(J), K-a = 0 transition is split into 15 states by tunneling motions for (CH3OH)(2), ((CH3OH)-C-13)(2), (CH3OD)(2), (CD3OH)(2), and (CD3OH)(2). The preliminary analysis of the methyl internal rotation presented here was guided by the previously developed multidimensional tunneling theory which predicts 16 tunneling components for each R(J) transition from 25 distinct tunneling motions. Several isotopically mixed dimers of methanol have also been measured, namely (CH3OH)-C-13, CH3OD, CD3OH, and CD3OD bound to (CH3OH)-C-12. Since the hydrogen bond interchange motion (which converts a donor into an acceptor) would produce a new and less favorable conformation from an energy viewpoint, it does not occur and only 10 tunneling components are observed for these mixed dimers. The structure of the complex is similar to that of water dimer with a hydrogen bond distance of 2.035 Angstrom and a tilt of the acceptor methanol of 84 degrees from the O-H-O axis. The effective barrier to internal rotation for the donor methyl group of (CH3OH)(2) is V-3 = 183.0 cm(-1) and is one-half of the value for the methanol monomer (370 cm(-1)), while the barrier to internal rotation of the acceptor methyl group is 120 cm(-1). (C) 1995 Academic Press, Inc.
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页码:478 / 492
页数:15
相关论文
共 25 条
[1]   AN AUTOMATIC MOLECULAR-BEAM MICROWAVE FOURIER-TRANSFORM SPECTROMETER [J].
ANDERSEN, U ;
DREIZLER, H ;
GRABOW, JU ;
STAHL, W .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1990, 61 (12) :3694-3699
[2]  
ANDRESEN U, COMMUNICATION
[3]   INTERMOLECULAR POTENTIAL FUNCTION FOR METHANOL DIMER INTERACTIONS FROM ABINITIO CALCULATIONS [J].
ANWANDER, EHS ;
PROBST, MM ;
RODE, BM .
CHEMICAL PHYSICS, 1992, 166 (03) :341-360
[4]   FABRY-PEROT CAVITY PULSED FOURIER-TRANSFORM MICROWAVE SPECTROMETER WITH A PULSED NOZZLE PARTICLE SOURCE [J].
BALLE, TJ ;
FLYGARE, WH .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1981, 52 (01) :33-45
[5]   THE MICROWAVE-SPECTRUM AND GEOMETRY OF THE METHANOL HYDROGEN-CHLORIDE DIMER [J].
COPE, P ;
LEGON, AC ;
MILLEN, DJ .
CHEMICAL PHYSICS LETTERS, 1984, 112 (01) :59-64
[6]  
DELBENE JE, 1971, J CHEM PHYS, V55, P4633, DOI 10.1063/1.1676800
[7]   STRUCTURE OF WATER DIMER FROM MOLECULAR-BEAM ELECTRIC RESONANCE SPECTROSCOPY [J].
DYKE, TR ;
MACK, KM ;
MUENTER, JS .
JOURNAL OF CHEMICAL PHYSICS, 1977, 66 (02) :498-510
[8]   ON THE APPARENT METHYL INTERNAL-ROTATION BARRIER DECREASE IN WEAKLY-BOUND METHANOL COMPLEXES [J].
FRASER, GT ;
LOVAS, FJ ;
SUENRAM, RD .
JOURNAL OF MOLECULAR SPECTROSCOPY, 1994, 167 (01) :231-235
[9]  
GRABOW JU, 1992, THESIS U KIEL
[10]   THE FUNDAMENTAL TORSION BAND IN ACETALDEHYDE [J].
KLEINER, I ;
GODEFROID, M ;
HERMAN, M ;
MCKELLAR, ARW .
JOURNAL OF MOLECULAR SPECTROSCOPY, 1990, 142 (02) :238-253