Gas phase proton transfer reaction of nitric acid ammonia and the role of water

被引:58
作者
Tao, FM [1 ]
机构
[1] Calif State Univ Fullerton, Dept Chem & Biochem, Fullerton, CA 92834 USA
关键词
D O I
10.1063/1.475372
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 gas-phase proton transfer reaction of nitric acid-ammonia and the effect of the first three water molecules are investigated by high level ab initio calculations on the molecular clusters HNO3-NH3-(H2O)(n), n = 0,1,2,3. The equilibrium structures, binding energies, and harmonic frequencies of the clusters as well as the potential energy surfaces along the proton transfer pathway of nitric acid-ammonia are calculated at the second-order Moller-Plesset perturbation (MP2) level with two extended basis sets 6-31 + G(d) and 6-311 + + G(d,p). It is found that, either without water or with one water molecule, the nitric acid-ammonia system exists as hydrogen bonded, with nitric acid acting as the hydrogen bond donor and ammonia as the acceptor. With two or three water molecules, the system becomes an ion pair resulting from the complete transfer of a proton from the nitric acid to ammonia. The potential energy surfaces along the proton transfer pathway are analyzed to understand the effect of the water molecules. The water molecules stepwise added into the system are found to increase the stability of the ion pair over the hydrogen bonded form. The first water molecule is not enough to stabilize the ion pair, but it results in a flatter potential energy pathway for the proton transfer. The second water molecule produces additional stabilization energy which helps fully stabilize the ion pair. The third water molecule contributes to further stabilize the ion pair. The harmonic frequencies and infrared intensities of the clusters are analyzed, which provide further evidence in agreement with the transition from the hydrogen bond to the ion pair structure as the water molecules are stepwise introduced. On the basis of these results, we conclude that ammonium nitrate might be formed by the gas phase reaction of nitric acid with ammonia in the presence of adequate water vapor. (C) 1998 American Institute of Physics.
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页码:193 / 202
页数:10
相关论文
共 30 条
[21]   APPROXIMATE EVALUATIONS OF THE ELECTROSTATIC FREE-ENERGY AND INTERNAL ENERGY CHANGES IN SOLUTION PROCESSES [J].
MIERTUS, S ;
TOMASI, J .
CHEMICAL PHYSICS, 1982, 65 (02) :239-245
[22]   Note on an approximation treatment for many-electron systems [J].
Moller, C ;
Plesset, MS .
PHYSICAL REVIEW, 1934, 46 (07) :0618-0622
[23]   Structure and stability of the nitric acid ammonia complex in the gas phase and in water [J].
Nguyen, MT ;
Jamka, AJ ;
Cazar, RA ;
Tao, FM .
JOURNAL OF CHEMICAL PHYSICS, 1997, 106 (21) :8710-8717
[24]   THE V3 AND V4 INTERACTING BANDS OF HNO3 LINE POSITIONS AND LINE-INTENSITIES [J].
PERRIN, A ;
LADOBORDOWSKY, O ;
VALENTIN, A .
MOLECULAR PHYSICS, 1989, 67 (02) :249-270
[25]  
Seinfeld J H, 1986, Environ Sci Technol, V20, P863, DOI 10.1021/es00151a602
[26]   RELATIVE-HUMIDITY AND PH-DEPENDENCE OF THE VAPOR-PRESSURE OF AMMONIUM-NITRATE NITRIC ACID-SOLUTIONS AT 25-DEGREES-C [J].
STELSON, AW ;
SEINFELD, JH .
ATMOSPHERIC ENVIRONMENT, 1982, 16 (05) :993-1000
[27]   NOTE ON THE EQUILIBRIUM RELATIONSHIP BETWEEN AMMONIA AND NITRIC-ACID AND PARTICULATE AMMONIUM-NITRATE [J].
STELSON, AW ;
FRIEDLANDER, SK ;
SEINFELD, JH .
ATMOSPHERIC ENVIRONMENT, 1979, 13 (03) :369-371
[28]   EXTREMAL PROPERTIES OF FORCE CONSTANTS .I. [J].
STREY, G .
JOURNAL OF MOLECULAR SPECTROSCOPY, 1967, 24 (01) :87-&
[30]  
TAO FM, UNPUB