On the mechanism for nitrate formation via the peroxy radical plus NO reaction

被引:77
|
作者
Zhang, JY
Dransfield, T
Donahue, NM
机构
[1] Carnegie Mellon Univ, Dept Chem, Pittsburgh, PA 15213 USA
[2] Carnegie Mellon Univ, Dept Chem Engn, Pittsburgh, PA 15213 USA
[3] Harvard Univ, Dept Chem & Biol Chem, Cambridge, MA 02138 USA
来源
JOURNAL OF PHYSICAL CHEMISTRY A | 2004年 / 108卷 / 42期
关键词
D O I
10.1021/jp048096x
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
We present a master equation study of organic nitrate formation from the peroxy radical (RO2) + NO reaction. The mechanism is constrained by both quantum chemical calculations of the potential energy surface and existing yield data. This mechanism displays heretofore unrecognized features of the system, including distinct conformers of a critical peroxynitrite (ROONO) intermediate that do not interconvert and a dual falloff behavior driven by collisional stabilization in multiple wells. These features have significant implications for atmospheric chemistry; in particular, only a fraction of the ROONO intermediates may easily isomerize to nitrates, resulting in a limit to total nitrate production. Existing mechanisms, extrapolated to low temperature and high pressure, produce nitrate almost exclusively. As a consequence, hydrocarbon oxidation sequences based on these mechanisms do not propagate radical chemistry, which is inconsistent with available experimental data. To reproduce observed nitrate yields, we model a transition state from the ROONO intermediate to RONO2 that differs considerably from the few found in computational studies. Specifically, the data require that this transition state energy lie well below the energy of separated radical products (RO + NO2), while computational studies find the transition state at higher energies. A second feature of yield data is difficult to model; to enable collisional stabilization of C-5 systems, as observed, we reduce the unimolecular decomposition rate constants from the ROONO intermediate by a factor that is at the far end of the plausible range. However, with these experimental constraints in place, the model successfully reproduces multiple features of existing data quantitatively, including both high- and low-pressure asymptotes to nitrate production as well as the observed shifting of pressure falloff curves with carbon number. Consequently, we present a new parametrization of nitrate yields, providing interpolation equivalent to existing parametrizations but dramatically improved extrapolation behavior.
引用
收藏
页码:9082 / 9095
页数:14
相关论文
共 50 条
  • [1] Kinetics Study of the Aromatic Bicyclic Peroxy Radical plus NO Reaction: Overall Rate Constant and Nitrate Product Yield Measurements
    Elrod, Matthew J.
    JOURNAL OF PHYSICAL CHEMISTRY A, 2011, 115 (28): : 8125 - 8130
  • [2] On the use of an explicit chemical mechanism to dissect peroxy acetyl nitrate formation
    Xue, Likun
    Wang, Tao
    Wang, Xinfeng
    Blake, Donald R.
    Gao, Jian
    Nie, Wei
    Gao, Rui
    Gao, Xiaomei
    Xu, Zheng
    Ding, Aijun
    Huang, Yu
    Lee, Shuncheng
    Chen, Yizhen
    Wang, Shulan
    Chai, Fahe
    Zhang, Qingzhu
    Wang, Wenxing
    ENVIRONMENTAL POLLUTION, 2014, 195 : 39 - 47
  • [3] Mechanism and kinetics for the reaction of methyl peroxy radical with O2
    Lakshmanan, Sandhiya
    Hase, William L.
    Smith, Gregory P.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2021, 23 (41) : 23508 - 23516
  • [4] Reaction mechanism of the nitrate radical with biphenyl in acetonitrile
    Dong, WB
    Zhu, CZ
    Fang, HJ
    Ouyang, B
    Zhang, RX
    Hou, HQ
    ACTA CHIMICA SINICA, 2005, 63 (23) : 2147 - 2152
  • [5] Temperature dependence of pentyl nitrate formation from the reaction of pentyl peroxy radicals with NO
    Cassanelli, Paola
    Fox, David J.
    Cox, R. Anthony
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2007, 9 (31) : 4332 - 4337
  • [6] Trimethylamine as precursor to secondary organic aerosol formation via nitrate radical reaction in the atmosphere
    Silva, Philip J.
    Erupe, Mark E.
    Price, Derek
    Elias, John
    Malloy, Quentin G. J.
    Li, Qi
    Warren, Bethany
    Cocker, David R., III
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2008, 42 (13) : 4689 - 4696
  • [7] THE EFFECT OF ACETYL PEROXY-PEROXY RADICAL REACTIONS ON PEROXYACETYL NITRATE AND OZONE CONCENTRATIONS
    STOCKWELL, WR
    MILFORD, JB
    GAO, DF
    YANG, YJ
    ATMOSPHERIC ENVIRONMENT, 1995, 29 (14) : 1591 - 1599
  • [8] Peroxy Radical Autoxidation and Sequential Oxidation in Organic Nitrate Formation during Limonene Nighttime Oxidation
    Mayorga, Raphael
    Xia, Yu
    Zhao, Zixu
    Long, Bo
    Zhang, Haofei
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2022, 56 (22) : 15337 - 15346
  • [9] Production of peroxy radicals at night via reactions of ozone and the nitrate radical in the marine boundary layer
    Salisbury, G
    Rickard, AR
    Monks, PS
    Allan, BJ
    Bauguitte, S
    Penkett, SA
    Carslaw, N
    Lewis, AC
    Creasey, DJ
    Heard, DE
    Jacobs, PJ
    Lee, JD
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2001, 106 (D12): : 12669 - 12687
  • [10] A computational investigation on the HO2 and isopropyl peroxy radical reaction: Mechanism and kinetics
    Yang, Zhenli
    Lin, Xiaoxiao
    Long, Bo
    Zhang, Weijun
    CHEMICAL PHYSICS LETTERS, 2020, 749