Molecular dynamics investigation of IEPOX chemical behavior at the interface and in the bulk phase of acidic aerosols

IF 8.1 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Chemosphere Pub Date : 2024-10-19 DOI:10.1016/j.chemosphere.2024.143586
Xihong Liu , Xiaohui Ma , Jiale Liu , Baozhong Zhang , Xi Wang , Jiaoxue Yang , Kunjie Hou , Yahui Shi , Hanyu Chen
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Abstract

Isoprene epoxydiol (IEPOX) is an important reactive gas-phase intermediate produced by the photooxidation of isoprene under low NOx conditions, playing a key role in the formation of secondary organic aerosols (SOA). Previous studies have mostly focused on the liquid-phase reactions of IEPOX within aerosols; however, interfacial heterogeneous chemical reactions are equally important in SOA formation. This study systematically explores the reaction mechanisms of IEPOX at the acidic aerosol interface and in the bulk phase using classical molecular dynamics (MD) and ab initio molecular dynamics simulations (AIMD). The study found that the free energy of IEPOX at the aerosol interface significantly decreases, indicating that interfacial heterogeneous chemical reactions are indispensable for the formation of IEPOX-derived SOA. The research reveals the formation pathways of 2-methyltetrols (2-MTO) and 1,3,4-trihydroxy-3-methylbutan-2-yl sulfates (2-MTOOS), finding that the protonation of the epoxy O atom and the cleavage of the C–O bond are the rate-controlling steps, while the nucleophilic addition is a spontaneous process. Through multiple sets of simulations, it was observed that the formation frequency of 2-MTO at the acidic aerosol interface and in the bulk phase reached 53.8%, significantly higher than the 30.8% of 2-MTOOS, which is consistent with field observation data. Additionally, through metadynamics (MTD) simulations, it was suggested that IEPOX could undergoes acid-catalyzed ring-opening reactions at the interface, potentially followed by the transfer of H atoms from primary alcohols into the aerosol, leading to the possible formation of the intermediate product 3-methylbut-3-ene-1,2,4-triol (one of the proposed structures of C5-alkene triols). These findings provide new insights into the formation mechanism of IEPOX-derived SOA and offer a scientific basis for future studies on their physicochemical properties and atmospheric fate.

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IEPOX 在酸性气溶胶界面和块相中化学行为的分子动力学研究。
异戊二烯环氧二醇(IEPOX)是异戊二烯在低氮氧化物条件下发生光氧化反应产生的一种重要的气相活性中间体,在二次有机气溶胶(SOA)的形成过程中起着关键作用。以往的研究大多集中于气溶胶中 IEPOX 的液相反应;然而,界面异相化学反应在 SOA 形成过程中同样重要。本研究利用经典分子动力学(MD)和非线性分子动力学模拟(AIMD)系统地探讨了 IEPOX 在酸性气溶胶界面和体相的反应机理。研究发现,气溶胶界面上 IEPOX 的自由能显著降低,表明界面异相化学反应是 IEPOX 衍生 SOA 形成不可或缺的因素。研究揭示了 2-甲基四醇(2-MTO)和 1,3,4-三羟基-3-甲基丁-2-基硫酸盐(2-MTOOS)的形成途径,发现环氧 O 原子的质子化和 C-O 键的裂解是速率控制步骤,而亲核加成是自发过程。通过多组模拟观察发现,2-MTO 在酸性气溶胶界面和体相的形成频率达到 53.8%,明显高于 2-MTOOS 的 30.8%,这与现场观测数据一致。此外,通过元动力学(MTD)模拟,IEPOX 可能会在界面上发生酸催化的开环反应,随后可能会将伯醇中的 H 原子转移到气溶胶中,从而可能形成中间产物 3-甲基丁-3-烯-1,2,4-三醇(C5-烯三醇的拟议结构之一)。这些发现为了解 IEPOX 衍生的 SOA 的形成机制提供了新的视角,并为今后研究其物理化学特性和大气归宿提供了科学依据。
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来源期刊
Chemosphere
Chemosphere 环境科学-环境科学
CiteScore
15.80
自引率
8.00%
发文量
4975
审稿时长
3.4 months
期刊介绍: Chemosphere, being an international multidisciplinary journal, is dedicated to publishing original communications and review articles on chemicals in the environment. The scope covers a wide range of topics, including the identification, quantification, behavior, fate, toxicology, treatment, and remediation of chemicals in the bio-, hydro-, litho-, and atmosphere, ensuring the broad dissemination of research in this field.
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