Density functional studies of the formation of nitrous acid from the reaction of nitrogen dioxide and water vapor

被引:51
作者
Chou, A [1 ]
Li, ZR [1 ]
Tao, FM [1 ]
机构
[1] Calif State Univ Fullerton, Dept Chem & Biochem, Fullerton, CA 92834 USA
关键词
D O I
10.1021/jp990465f
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
Reaction mechanisms for the production of nitrous acid (HONO) from the homogeneous gas-phase hydrolysis of nitrogen dioxide (NO2) are examined by density functional theory calculations, The molecular structures and energies of the NO2-(H2O), (n = 1, 2, 3) and N2O4-(H-2 O)n (n = 1, 2) systems corresponding to the stationary points on the potential energy surface along the reaction pathways are calculated using the B3LYP method with the 6-311+G(2d,p) basis set. These reaction pathways represent the homogeneous hydrolysis of NO2 or N2O4 With a varying number of water (H2O) molecules. The reactions of NO2 with water produce MONO, along with the OH radical which was postulated to combine in the next step with a second NO2 to form nitric acid (HNO3). The simple NO2 + H2O bimolecular reaction leads to the highly unstable OH radical which reacts reversibly with HONO without an energy barrier. The introduction of single solvating H2O molecule appears to stabilize the transition state as well as an intermediate that contains the OH radical. However, the energy barrier is found to be near 30 kcal mol(-1) and is not affected by multiple additional H2O molecules. On the other hand, the reaction of N2O4 with water leads directly to HONO and HNO3, The energy barrier for the N2O4 reaction is above 30 kcal mol(-1) and is also unaffected by additional H2O molecules. The study demonstrates that the gas-phase hydrolysis of NO2 or N2O4 is insignificant regardless of water vapor pressure. The physical origin responsible for the unusual hydrolysis reaction of NO2 is explored with the contrasting examples of N2O5 and SO3 hydrolysis reactions.
引用
收藏
页码:7848 / 7855
页数:8
相关论文
共 45 条
[11]   AN IMPROVED ALGORITHM FOR REACTION-PATH FOLLOWING [J].
GONZALEZ, C ;
SCHLEGEL, HB .
JOURNAL OF CHEMICAL PHYSICS, 1989, 90 (04) :2154-2161
[12]   Reaction of N2O5 with H2O on bulk liquids and on particles and the effect of dissolved HNO3 [J].
Hanson, DR .
GEOPHYSICAL RESEARCH LETTERS, 1997, 24 (09) :1087-1090
[13]   A density functional theory and ab initio study of the hydrolysis of dinitrogen pentoxide [J].
Hanway, D ;
Tao, FM .
CHEMICAL PHYSICS LETTERS, 1998, 285 (5-6) :459-466
[14]   SELF-CONSISTENT MOLECULAR-ORBITAL METHODS .12. FURTHER EXTENSIONS OF GAUSSIAN-TYPE BASIS SETS FOR USE IN MOLECULAR-ORBITAL STUDIES OF ORGANIC-MOLECULES [J].
HEHRE, WJ ;
DITCHFIELD, R ;
POPLE, JA .
JOURNAL OF CHEMICAL PHYSICS, 1972, 56 (05) :2257-+
[15]   LABORATORY STUDIES OF THE KINETICS OF FORMATION OF NITROUS-ACID FROM THE THERMAL-REACTION OF NITROGEN-DIOXIDE AND WATER-VAPOR [J].
JENKIN, ME ;
COX, RA ;
WILLIAMS, DJ .
ATMOSPHERIC ENVIRONMENT, 1988, 22 (03) :487-498
[16]   KINETIC STUDY OF GAS-PHASE FORMATION AND DECOMPOSITION REACTIONS OF NITROUS-ACID [J].
KAISER, EW ;
WU, CH .
JOURNAL OF PHYSICAL CHEMISTRY, 1977, 81 (18) :1701-1706
[17]   Heterogeneous formation of nitrous acid (HONO) on soot aerosol particles [J].
Kalberer, M ;
Ammann, M ;
Arens, F ;
Gäggeler, HW ;
Baltensperger, U .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1999, 104 (D11) :13825-13832
[18]   Measurement of nitrous acid in motor vehicle exhaust [J].
Kirchstetter, TW ;
Harley, RA ;
Littlejohn, D .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1996, 30 (09) :2843-2849
[19]   GAS-PHASE REACTION OF SULFUR-TRIOXIDE WITH WATER-VAPOR [J].
KOLB, CE ;
JAYNE, JT ;
WORSNOP, DR ;
MOLINA, MJ ;
MEADS, RF ;
VIGGIANO, AA .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1994, 116 (22) :10314-10315
[20]   SELF-CONSISTENT MOLECULAR-ORBITAL METHODS .20. BASIS SET FOR CORRELATED WAVE-FUNCTIONS [J].
KRISHNAN, R ;
BINKLEY, JS ;
SEEGER, R ;
POPLE, JA .
JOURNAL OF CHEMICAL PHYSICS, 1980, 72 (01) :650-654