水纳米液滴界面羟基自由基热诱导行为的分子洞察。

IF 3.9 2区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Mohammad Hassan Hadizadeh, Fei Xu
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引用次数: 0

摘要

纳米水滴作为微反应器,驱动大气化学、污染物降解和气溶胶形成的关键过程。本研究利用从头算分子动力学(AIMD)模拟揭示了在300 K至400 K温度范围内纳米水滴中羟基自由基的热诱导行为。升高的温度显著削弱了氢键网络,增强了OH自由基的迁移率,促进了界面反应性。氢转移事件的能垒从300 K时的~ 4 kcal/mol降低到400 K时的~ 2.5 kcal/mol,有利于OH自由基从液滴内部快速迁移到空气-水界面。热能也引起液滴变形,这反映在非球面参数的增加上,进一步放大了界面动力学。尽管有这些热扰动,OH自由基在界面上保持一致的取向,通过界面力和局部氢键稳定。这些发现为温度依赖自由基动力学提供了分子尺度的见解,对大气氧化、等离子体-液体相互作用和环境化学具有广泛的意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Molecular insights into thermally induced behavior of hydroxyl radicals at water nanodroplet interfaces.

Molecular insights into thermally induced behavior of hydroxyl radicals at water nanodroplet interfaces.

Molecular insights into thermally induced behavior of hydroxyl radicals at water nanodroplet interfaces.

Molecular insights into thermally induced behavior of hydroxyl radicals at water nanodroplet interfaces.

Water nanodroplets act as microreactors, driving critical processes in atmospheric chemistry, pollutant degradation, and aerosol formation. This study utilizes ab initio molecular dynamics (AIMD) simulations to unravel the thermally induced behavior of hydroxyl (OH) radicals within water nanodroplets across temperatures ranging from 300 K to 400 K. Elevated temperatures significantly weaken the hydrogen-bonding network, enhance OH radical mobility, and promote interfacial reactivity. The energy barriers for hydrogen transfer events decrease from ~ 4 kcal/mol at 300 K to ~ 2.5 kcal/mol at 400 K, facilitating rapid migration of OH radicals from the droplet interior to the air-water interface. Thermal energy also induces droplet deformation, as reflected by an increase in the asphericity parameter, further amplifying interfacial dynamics. Despite these thermal perturbations, OH radicals maintain a consistent orientation at the interface, stabilized by interfacial forces and localized hydrogen bonding. These findings provide molecular-scale insights into temperature-dependent radical dynamics with broad implications for atmospheric oxidation, plasma-liquid interactions, and environmental chemistry.

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来源期刊
Scientific Reports
Scientific Reports Natural Science Disciplines-
CiteScore
7.50
自引率
4.30%
发文量
19567
审稿时长
3.9 months
期刊介绍: We publish original research from all areas of the natural sciences, psychology, medicine and engineering. You can learn more about what we publish by browsing our specific scientific subject areas below or explore Scientific Reports by browsing all articles and collections. Scientific Reports has a 2-year impact factor: 4.380 (2021), and is the 6th most-cited journal in the world, with more than 540,000 citations in 2020 (Clarivate Analytics, 2021). •Engineering Engineering covers all aspects of engineering, technology, and applied science. It plays a crucial role in the development of technologies to address some of the world''s biggest challenges, helping to save lives and improve the way we live. •Physical sciences Physical sciences are those academic disciplines that aim to uncover the underlying laws of nature — often written in the language of mathematics. It is a collective term for areas of study including astronomy, chemistry, materials science and physics. •Earth and environmental sciences Earth and environmental sciences cover all aspects of Earth and planetary science and broadly encompass solid Earth processes, surface and atmospheric dynamics, Earth system history, climate and climate change, marine and freshwater systems, and ecology. It also considers the interactions between humans and these systems. •Biological sciences Biological sciences encompass all the divisions of natural sciences examining various aspects of vital processes. The concept includes anatomy, physiology, cell biology, biochemistry and biophysics, and covers all organisms from microorganisms, animals to plants. •Health sciences The health sciences study health, disease and healthcare. This field of study aims to develop knowledge, interventions and technology for use in healthcare to improve the treatment of patients.
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