Density functional theory study on ethanol dimers and cyclic ethanol trimers

被引:100
作者
González, L [1 ]
Mó, O [1 ]
Yáñez, M [1 ]
机构
[1] Univ Autonoma Madrid, Dept Quim, E-28049 Madrid, Spain
关键词
D O I
10.1063/1.479689
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
The structure and the relative stability of the ethanol dimer and the cyclic ethanol trimer were studied using density functional theory methods. The geometries of the different dimers and trimers were optimized at the B3LYP/6-311+G(d,p) level of theory, while the final energies were obtained at the B3LYP/6-311+G(3df,2p) level. Four different (ethanol)(2) complexes were found to be local minima of the potential energy surface, the global minimum being that in which both monomers exhibit a trans conformation. The hydrogen bond (HB) in ethanol dimer is slightly stronger than in methanol dimer, reflecting the enhanced intrinsic basicity of ethanol with regards to methanol. The OH donor stretch appears redshifted by 161 cm(-1), while the redshifting undergone by the OH acceptor stretch is negligibly small. The relative stability of the trimers is a function of the number of monomers with a gauche conformation, the global minimum being that in which the three monomers have a trans conformation. As for water and methanol trimers, the three HBs in the cyclic ethanol trimer are not strictly equivalent. Consistently, the redshiftings of the OH stretching frequencies are different. Cooperative effects are sizably large, as reflected in the O ... O distances, the elongation of the OH donor groups, the charge density at the bond critical points, the frequency shiftings of the OH stretches, and the additivity interaction energy. The most significant features of the vibrational spectra of the monomers, the dimers, and the trimers in the 800-1200 cm(-1) region are reasonably well reproduced by our calculations. (C) 1999 American Institute of Physics. [S0021-9606(99)30133-1].
引用
收藏
页码:3855 / 3861
页数:7
相关论文
共 86 条
[1]   Carbenes and silylenes as hydrogen bond acceptors [J].
Alkorta, I ;
Elguero, J .
JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (50) :19367-19370
[2]  
Bader RWF., 1990, Atoms in Molecules: A Quantum Theory
[3]   Study of the hydrates of H2SO4 using density functional theory [J].
Bandy, AR ;
Ianni, JC .
JOURNAL OF PHYSICAL CHEMISTRY A, 1998, 102 (32) :6533-6539
[4]   INFRA-RED CRYOGENIC STUDIES .5. ETHANOL AND ETHANOL-D IN ARGON MATRICES [J].
BARNES, AJ ;
HALLAM, HE .
TRANSACTIONS OF THE FARADAY SOCIETY, 1970, 66 (572) :1932-&
[6]   INFRARED EXCITATION AND DISSOCIATION OF METHANOL DIMERS AND TRIMERS [J].
BIZZARRI, A ;
STOLTE, S ;
REUSS, J ;
VANDUIJNEVELDTVANDERIJDT, JGCM ;
VANDUIJNEVELDT, FB .
CHEMICAL PHYSICS, 1990, 143 (03) :423-435
[7]   THEORETICAL-STUDIES OF VANDERWAALS MOLECULES AND INTERMOLECULAR FORCES [J].
BUCKINGHAM, AD ;
FOWLER, PW ;
HUTSON, JM .
CHEMICAL REVIEWS, 1988, 88 (06) :963-988
[8]   ABINITIO STUDY OF INTERMOLECULAR POTENTIAL OF H2O TRIMER [J].
CHALASINSKI, G ;
SZCZESNIAK, MM ;
CIEPLAK, P ;
SCHEINER, S .
JOURNAL OF CHEMICAL PHYSICS, 1991, 94 (04) :2873-2883
[9]   THE INFRARED PREDISSOCIATION SPECTRA OF WATER CLUSTERS [J].
COKER, DF ;
MILLER, RE ;
WATTS, RO .
JOURNAL OF CHEMICAL PHYSICS, 1985, 82 (08) :3554-3562
[10]   Infrared photoisomerization of the methanol dimer trapped in argon matrix: Monochromatic irradiation experiments and DFT calculations [J].
Coussan, S ;
Bouteiller, Y ;
Loutellier, A ;
Perchard, JP ;
Racine, S ;
Peremans, A ;
Zheng, WQ ;
Tadjeddine, A .
CHEMICAL PHYSICS, 1997, 219 (2-3) :221-234