Single-Molecule Catalysis Revealed: Elucidating the Mechanistic Framework for the Formation and Growth of Atmospheric Iodine Oxide Aerosols in Gas-Phase and Aqueous Surface Environments
Manoj Kumar, Alfonso Saiz‐Lopez, Joseph S. Francisco
University of Nebraska–Lincoln University of Pennsylvania Instituto de Química Física Blas Cabrera
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Iodine oxide aerosols are ubiquitous in many coastal atmospheric environments. However, the exact mechanism responsible for their homogeneous nucleation and subsequent cluster growth remains to be fully established. Using quantum chemical calculations, we propose a new mechanistic framework for the formation and subsequent growth of iodine oxide aerosols, which takes advantage of noncovalent interactions between iodine oxides (I 2 O 5 and I 2 O 4 ) and iodine acids (HIO 3 and HIO 2 ). Larger iodine oxide clusters are suggested to be formed in a facile manner and with enhanced exothermicity. The newly proposed mechanisms follow both concerted and stepwise pathways. In all these new chemistries, an O:I ratio of 2–2.5 is predicted, which satisfies an experimentally derived criterion recently proposed for identifying iodine oxides involved in atmospheric aerosol formation. Born–Oppenheimer molecular dynamics simulations at the air–water interface suggest that I 2 O 5 and I 4 O 10, which are two of the most common nucleating iodine oxides, react with interfacial water on the picosecond time scale and result in novel nucleating species such as H 2 I 2 O 6 and HI 4 O 11 – or I 3 O 8 . An important implication of these simulation results is that aqueous surfaces, which are ubiquitous in the atmosphere, may activate iodine oxides to result in a new class of nucleating compounds, which can form mixed aerosol particles with potent precursors, such as HIO 3 or H 2 SO 4, in marine air masses via typical acid-based interactions. Overall, these results give a better understanding of iodine-rich aerosols in diverse environments.
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物理Atmospheric chemistry and aerosols
Atmospheric Ozone and Climate · Catalytic Processes in Materials Science
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