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DOI10.5194/acp-19-12397-2019
Photomineralization mechanism changes the ability of dissolved organic matter to activate cloud droplets and to nucleate ice crystals
Borduas-Dedekind, Nadine1,2; Ossola, Rachele1; David, Robert O.2; Boynton, Lin S.1; Weichlinger, Vera2; Kanji, Zamin A.2; McNeill, Kristopher1
2019-10-08
发表期刊ATMOSPHERIC CHEMISTRY AND PHYSICS
ISSN1680-7316
EISSN1680-7324
出版年2019
卷号19期号:19页码:12397-12412
文章类型Article
语种英语
国家Switzerland
英文摘要

An organic aerosol particle has a lifetime of approximately 1 week in the atmosphere during which it will be exposed to sunlight. However, the effect of photochemistry on the propensity of organic matter to participate in the initial cloud-forming steps is difficult to predict. In this study, we quantify on a molecular scale the effect of photochemical exposure of naturally occurring dissolved organic matter (DOM) and of a fulvic acid standard on its cloud condensation nuclei (CCN) and ice nucleation (IN) activity. We find that photochemical processing, equivalent to 4.6 d in the atmosphere, of DOM increases its ability to form cloud droplets by up to a factor of 2.5 but decreases its ability to form ice crystals at a loss rate of - 0.04 degrees C-T(50) h(-1) of sunlight at ground level. In other words, the ice nucleation activity of photooxidized DOM can require up to 4 degrees C colder temperatures for 50 % of the droplets to activate as ice crystals under immersion freezing conditions. This temperature change could impact the ratio of ice to water droplets within a mixed-phase cloud by delaying the onset of glaciation and by increasing the supercooled liquid fraction of the cloud, thereby modifying the radiative properties and the lifetime of the cloud. Concurrently, a photomineralization mechanism was quantified by monitoring the loss of organic carbon and the simultaneous production of organic acids, such as formic, acetic, oxalic and pyruvic acids, CO and CO2. This mechanism explains and predicts the observed increase in CCN and decrease in IN efficiencies. Indeed, we show that photochemical processing can be a dominant atmospheric ageing process, impacting CCN and IN efficiencies and concentrations. Photomineralization can thus alter the aerosol-cloud radiative effects of organic matter by modifying the supercooled-liquid-water-to-ice-crystal ratio in mixed-phase clouds with implications for cloud lifetime, precipitation patterns and the hydrological cycle.


领域地球科学
收录类别SCI-E
WOS记录号WOS:000489561300001
WOS关键词CONDENSATION NUCLEI ; MIXED-PHASE ; FREEZING NUCLEATION ; AEROSOL-PARTICLES ; OBSERVATIONAL CONSTRAINTS ; PHOTOCHEMICAL FORMATION ; HYGROSCOPIC GROWTH ; SURFACE-TENSION ; SPRAY AEROSOL ; GAS-PHASE
WOS类目Environmental Sciences ; Meteorology & Atmospheric Sciences
WOS研究方向Environmental Sciences & Ecology ; Meteorology & Atmospheric Sciences
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/187590
专题地球科学
作者单位1.Swiss Fed Inst Technol, Inst Biogeochem & Pollutant Dynam, CH-8092 Zurich, Switzerland;
2.Swiss Fed Inst Technol, Inst Atmospher & Climate Sci, CH-8092 Zurich, Switzerland
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Borduas-Dedekind, Nadine,Ossola, Rachele,David, Robert O.,et al. Photomineralization mechanism changes the ability of dissolved organic matter to activate cloud droplets and to nucleate ice crystals[J]. ATMOSPHERIC CHEMISTRY AND PHYSICS,2019,19(19):12397-12412.
APA Borduas-Dedekind, Nadine.,Ossola, Rachele.,David, Robert O..,Boynton, Lin S..,Weichlinger, Vera.,...&McNeill, Kristopher.(2019).Photomineralization mechanism changes the ability of dissolved organic matter to activate cloud droplets and to nucleate ice crystals.ATMOSPHERIC CHEMISTRY AND PHYSICS,19(19),12397-12412.
MLA Borduas-Dedekind, Nadine,et al."Photomineralization mechanism changes the ability of dissolved organic matter to activate cloud droplets and to nucleate ice crystals".ATMOSPHERIC CHEMISTRY AND PHYSICS 19.19(2019):12397-12412.
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