Direct Studies of Peroxy Radical Autoxidation Reactions
Direct Studies of Peroxy Radical Autoxidation Reactions
批准号:
NE/X000524/1
负责人:
Rabi Chhantyal Pun
金额:
$63.71万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2023
资助国家:
英国
项目状态:
未结题
起止时间:
2023 至 --
中文摘要
植物排放的生物源挥发性有机化合物(BVOCs)通过设定大气中气溶胶的本底水平,在气候变化中起着至关重要的作用。气溶胶与太阳辐射相互作用,对气候产生降温作用。BVOCs还会影响NOx循环并产生臭氧。对流层中的臭氧是大气的最低层,是一种使气候变暖的强有力的温室气体,也是对空气质量产生负面影响的主要污染物。过氧自由基是参与这些物理化学过程的关键中间体,其形成具有无数的结构差异。据预测,这些结构具有不同的化学反应能力,因此产生气溶胶和臭氧的潜力也不同。然而,直到最近在近红外光腔衰荡光谱方面取得突破,才能了解过氧基结构的分布和反应性,从而了解对气溶胶和臭氧的影响。在这里,我们提出了一个实验室和地球系统相结合的模拟项目,它将测量来自最重要的BVOCs(异戊二烯和α-蒎烯)的过氧基的关键结构依赖的物理化学性质,并整合这些知识来比以往任何时候都更真实地模拟BVOCs对气候的影响。该项目的成果将直接惠及大气和物理科学领域的学术研究人员以及规划近期和长期环境和气候变化的政策制定者。这个项目将帮助Rabi Chhantyal Pun博士在剑桥大学亚历山大·阿奇博尔德教授的支持下,在诺丁汉大学启动一个专注于实验室光化学的新研究项目。它还将为一名新的博士后研究助理提供最先进的实验室和大气化学培训。
英文摘要
Biogenic volatile organic compounds (BVOCs), emitted by plants, play a crucial role in climate by setting the background levels of aerosol in the atmosphere. Aerosols interact with solar radiation and have a cooling affect on climate. BVOCs also affect the NOx cycle and produce ozone. Ozone in the troposphere, lowest level of the atmosphere, is a potent greenhouse gas which warms the climate and also a major pollutant which negatively impacts air quality. Peroxy radicals are key intermediates involved in these physio-chemical processes and are formed with myriad of structural differences. These structures are predicted to have different chemical reactivities and thus varied potential to produce aerosols and ozone. However, until the recent breakthroughs in near infrared cavity ring-down spectroscopy understanding the distribution of peroxy radical structures and reactivity, and so the effects on aerosols and ozone, was impossible. Here we propose a combined laboratory and Earth system modelling project which will measure the key structure dependent physio-chemical properties of peroxy radicals from the most important BVOCs (isoprene and alpha-pinene), and integrate this knowledge to simulate the impacts of BVOCs on climate more faithfully than ever possible before. The results from this project will be of direct benefit to academic researchers in atmospheric and physical sciences and policy makers planning for the environmental and climate changes in the near and long-term future. This project will help Dr Rabi Chhantyal Pun to start a new research program focused on laboratory photochemistry at the University of Nottingham, with modelling support from Prof Alexander Archibald at the University of Cambridge. It will also provide state of the art laboratory and atmospheric chemistry training for a new postdoctoral research associate.
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