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Rapid growth of new atmospheric particles by nitric acid and ammonia condensation 期刊论文
NATURE, 2020, 581 (7807) : 184-+
作者:  Liang, Guanxiang;  Zhao, Chunyu;  Zhang, Huanjia;  Mattei, Lisa;  Sherrill-Mix, Scott;  Bittinger, Kyle;  Kessler, Lyanna R.;  Wu, Gary D.;  Baldassano, Robert N.;  DeRusso, Patricia;  Ford, Eileen;  Elovitz, Michal A.;  Kelly, Matthew S.;  Patel, Mohamed Z.;  Mazhani, Tiny;  Gerber, Jeffrey S.;  Kelly, Andrea;  Zemel, Babette S.;  Bushman, Frederic D.
收藏  |  浏览/下载:17/0  |  提交时间:2020/05/20

A list of authors and their affiliations appears at the end of the paper New-particle formation is a major contributor to urban smog(1,2), but how it occurs in cities is often puzzling(3). If the growth rates of urban particles are similar to those found in cleaner environments (1-10 nanometres per hour), then existing understanding suggests that new urban particles should be rapidly scavenged by the high concentration of pre-existing particles. Here we show, through experiments performed under atmospheric conditions in the CLOUD chamber at CERN, that below about +5 degrees Celsius, nitric acid and ammonia vapours can condense onto freshly nucleated particles as small as a few nanometres in diameter. Moreover, when it is cold enough (below -15 degrees Celsius), nitric acid and ammonia can nucleate directly through an acid-base stabilization mechanism to form ammonium nitrate particles. Given that these vapours are often one thousand times more abundant than sulfuric acid, the resulting particle growth rates can be extremely high, reaching well above 100 nanometres per hour. However, these high growth rates require the gas-particle ammonium nitrate system to be out of equilibrium in order to sustain gas-phase supersaturations. In view of the strong temperature dependence that we measure for the gas-phase supersaturations, we expect such transient conditions to occur in inhomogeneous urban settings, especially in wintertime, driven by vertical mixing and by strong local sources such as traffic. Even though rapid growth from nitric acid and ammonia condensation may last for only a few minutes, it is nonetheless fast enough to shepherd freshly nucleated particles through the smallest size range where they are most vulnerable to scavenging loss, thus greatly increasing their survival probability. We also expect nitric acid and ammonia nucleation and rapid growth to be important in the relatively clean and cold upper free troposphere, where ammonia can be convected from the continental boundary layer and nitric acid is abundant from electrical storms(4,5).


  
The Importance of Systematic Spatial Variability in the Surface Heat Flux of a Large Lake: A Multiannual Analysis for Lake Geneva 期刊论文
WATER RESOURCES RESEARCH, 2019, 55 (12) : 10248-10267
作者:  Rahaghi, A. I.;  Lemmin, U.;  Cimatoribus, A. A.;  Barry, D. A.
收藏  |  浏览/下载:6/0  |  提交时间:2020/02/16
Surface heat flux  meteorological forcing  spatial variability  Lake Geneva  atmospheric boundary layer stability  heat content  
LES of Flow Through and Around a Finite Patch of Thin Plates 期刊论文
WATER RESOURCES RESEARCH, 2019, 55 (9) : 7587-7605
作者:  Gong, Yiqing;  Stoesser, Thorsten;  Mao, Jingqiao;  McSherry, Richard
收藏  |  浏览/下载:9/0  |  提交时间:2019/11/27
vegetation  boundary layer  thin plates  LES  large eddy simulation  
Microlayer source of oxygenated volatile organic compounds in the summertime marine Arctic boundary layer 期刊论文
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2017, 114 (24) : 6203-6208
作者:  Mungall, Emma L.;  Abbatt, Jonathan P. D.;  Wentzell, Jeremy J. B.;  Lee, Alex K. Y.;  Thomas, Jennie L.;  Blais, Marjolaine;  Gosselin, Michel;  Miller, Lisa A.;  Papakyriakou, Tim;  Willis, Megan D.;  Liggio, John
收藏  |  浏览/下载:13/0  |  提交时间:2019/11/27
Arctic  chemical ionization mass spectrometry  oxygenated volatile organic compounds  sea surface microlayer  marine boundary layer  
High-resolution flow characterization close to the sediment-water interface in a run of the river reservoir 期刊论文
WATER RESOURCES RESEARCH, 2017, 53 (5)
作者:  Brand, Andreas;  Noss, Christian
收藏  |  浏览/下载:3/0  |  提交时间:2019/04/09
bottom boundary layer  sediment water interface  acoustic profiler  turbulence  dissipation rates