TY - JOUR
T1 - Heterogeneous oxidation of I2O4 at the air-water interface as an effective source of I2O5
AU - Deng, Xiucong
AU - Li, Zhongxiang
AU - Ning, An
AU - Li, Jing
AU - Liu, Yang
AU - Liu, Ling
AU - Zhang, Xiuhui
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/10/15
Y1 - 2026/10/15
N2 - Higher-order iodine oxides are pivotal to iodine chemistry and atmospheric aerosol formation. Among them, I2O5 stands out as a thermodynamically stable yet highly reactive species central to iodine cycling. However, its formation mechanisms remain elusive, as the identified gas- and particle-phase pathways are kinetically limited under ambient conditions. Given the iodine enrichment and the enhanced reactivity intrinsic to the air–water interface, we investigated the heterogeneous formation of I2O5 through oxidation of I2O4 by O3 using Born–Oppenheimer molecular dynamics simulations and quantum chemical calculations. Our results show that the free-energy barrier of interfacial reaction, relative to the gas phase, decreases from 18.9 to 8.3 kcal mol−1 for the O3-mediated pathway, implying that the interfacial mechanism is more favorable. This acceleration of reactions may stem from activating the reactants and stabilizing the transition states through interfacial water. These findings identify a previously overlooked heterogeneous pathway for I2O5 formation, highlighting the air–water interface as an active chemical microenvironment for iodine oxidation and providing molecular insights into atmospheric iodine cycling and iodine-mediated aerosol formation.
AB - Higher-order iodine oxides are pivotal to iodine chemistry and atmospheric aerosol formation. Among them, I2O5 stands out as a thermodynamically stable yet highly reactive species central to iodine cycling. However, its formation mechanisms remain elusive, as the identified gas- and particle-phase pathways are kinetically limited under ambient conditions. Given the iodine enrichment and the enhanced reactivity intrinsic to the air–water interface, we investigated the heterogeneous formation of I2O5 through oxidation of I2O4 by O3 using Born–Oppenheimer molecular dynamics simulations and quantum chemical calculations. Our results show that the free-energy barrier of interfacial reaction, relative to the gas phase, decreases from 18.9 to 8.3 kcal mol−1 for the O3-mediated pathway, implying that the interfacial mechanism is more favorable. This acceleration of reactions may stem from activating the reactants and stabilizing the transition states through interfacial water. These findings identify a previously overlooked heterogeneous pathway for I2O5 formation, highlighting the air–water interface as an active chemical microenvironment for iodine oxidation and providing molecular insights into atmospheric iodine cycling and iodine-mediated aerosol formation.
UR - https://www.scopus.com/pages/publications/105048023593
U2 - 10.1016/j.atmosenv.2026.122309
DO - 10.1016/j.atmosenv.2026.122309
M3 - Article
AN - SCOPUS:105048023593
SN - 1352-2310
VL - 383
JO - Atmospheric Environment
JF - Atmospheric Environment
M1 - 122309
ER -