Department of Earth, Atmospheric and Planetary Sciences, Massachusetts Institute of Technology , 77 Massachusetts Avenue, Cambridge 02139, Massachusetts, United States.
Environ Sci Technol. 2013;47(21):12174-83. doi: 10.1021/es402824c. Epub 2013 Oct 17.
This study presents high-precision isotope ratio-mass spectrometric measurements of isotopic fractionation during oxidation of SO2 by OH radicals in the gas phase and H2O2 and transition metal ion catalysis (TMI-catalysis) in the aqueous phase. Although temperature dependence of fractionation factors was found to be significant for H2O2 and TMI-catalyzed pathways, results from a simple 1D model revealed that changing partitioning between oxidation pathways was the dominant cause of seasonality in the isotopic composition of sulfate relative to SO2. Comparison of modeled seasonality with observations shows the TMI-catalyzed oxidation pathway is underestimated by more than an order of magnitude in all current atmospheric chemistry models. The three reactions showed an approximately mass-dependent relationship between (33)S and (34)S. However, the slope of the mass-dependent line was significantly different to 0.515 for the OH and TMI-catalyzed pathways, reflecting kinetic versus equilibrium control of isotopic fractionation. For the TMI-catalyzed pathway, both temperature dependence and (33)S/(34)S relationship revealed a shift in the rate-limiting reaction step from dissolution at lower temperatures to TMI-sulfite complex formation at higher temperatures. 1D model results showed that although individual reactions could produce Δ(33)S values between -0.15 and +0.2‰, seasonal changes in partitioning between oxidation pathways caused average sulfate Δ(33)S values of 0‰ throughout the year.
本研究对 OH 自由基气相氧化 SO2 以及 H2O2 和过渡金属离子催化(TMI 催化)在水相中的同位素分馏进行了高精度同位素比质谱测量。虽然 H2O2 和 TMI 催化途径的分馏因子的温度依赖性被发现是显著的,但一维模型的结果表明,氧化途径之间分配的变化是硫酸盐相对于 SO2 的同位素组成季节性变化的主要原因。模型季节性与观测结果的比较表明,在所有当前的大气化学模型中,TMI 催化氧化途径的估算值都低估了一个数量级以上。这三个反应在 (33)S 和 (34)S 之间表现出大致与质量相关的关系。然而,OH 和 TMI 催化途径的质量相关线的斜率明显不同于 0.515,反映了同位素分馏的动力学控制与平衡控制。对于 TMI 催化途径,温度依赖性和 (33)S/(34)S 关系都表明,在较低温度下,反应的限速步骤从溶解转变为在较高温度下 TMI-亚硫酸盐配合物的形成。一维模型结果表明,尽管个别反应可以产生 -0.15 到 +0.2‰之间的 Δ(33)S 值,但氧化途径之间分配的季节性变化导致硫酸盐的平均 Δ(33)S 值在整个一年中为 0‰。