Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Neil M. Donahue is active.

Publication


Featured researches published by Neil M. Donahue.


Science | 2009

Evolution of Organic Aerosols in the Atmosphere

Jose L. Jimenez; Manjula R. Canagaratna; Neil M. Donahue; André S. H. Prévôt; Qi Zhang; Jesse H. Kroll; P. F. DeCarlo; J. D. Allan; Hugh Coe; Nga L. Ng; A. C. Aiken; Kenneth S. Docherty; Ingrid M. Ulbrich; Andrew P. Grieshop; Allen L. Robinson; Jonathan Duplissy; Jared D. Smith; Katherine Wilson; V. A. Lanz; C. Hueglin; Yele Sun; Jian Tian; Ari Laaksonen; T. Raatikainen; J. Rautiainen; Petri Vaattovaara; Mikael Ehn; Markku Kulmala; Jason M. Tomlinson; Don R. Collins

Framework for Change Organic aerosols make up 20 to 90% of the particulate mass of the troposphere and are important factors in both climate and human heath. However, their sources and removal pathways are very uncertain, and their atmospheric evolution is poorly characterized. Jimenez et al. (p. 1525; see the Perspective by Andreae) present an integrated framework of organic aerosol compositional evolution in the atmosphere, based on model results and field and laboratory data that simulate the dynamic aging behavior of organic aerosols. Particles become more oxidized, more hygroscopic, and less volatile with age, as they become oxygenated organic aerosols. These results should lead to better predictions of climate and air quality. Organic aerosols are not compositionally static, but they evolve dramatically within hours to days of their formation. Organic aerosol (OA) particles affect climate forcing and human health, but their sources and evolution remain poorly characterized. We present a unifying model framework describing the atmospheric evolution of OA that is constrained by high–time-resolution measurements of its composition, volatility, and oxidation state. OA and OA precursor gases evolve by becoming increasingly oxidized, less volatile, and more hygroscopic, leading to the formation of oxygenated organic aerosol (OOA), with concentrations comparable to those of sulfate aerosol throughout the Northern Hemisphere. Our model framework captures the dynamic aging behavior observed in both the atmosphere and laboratory: It can serve as a basis for improving parameterizations in regional and global models.


Science | 2007

Rethinking Organic Aerosols: Semivolatile Emissions and Photochemical Aging

Allen L. Robinson; Neil M. Donahue; Manish K. Shrivastava; Emily A. Weitkamp; Amy M. Sage; Andrew P. Grieshop; Timothy E. Lane; Jeffrey R. Pierce; Spyros N. Pandis

Most primary organic-particulate emissions are semivolatile; thus, they partially evaporate with atmospheric dilution, creating substantial amounts of low-volatility gas-phase material. Laboratory experiments show that photo-oxidation of diesel emissions rapidly generates organic aerosol, greatly exceeding the contribution from known secondary organic-aerosol precursors. We attribute this unexplained secondary organic-aerosol production to the oxidation of low-volatility gas-phase species. Accounting for partitioning and photochemical processing of primary emissions creates a more regionally distributed aerosol and brings model predictions into better agreement with observations. Controlling organic particulate-matter concentrations will require substantial changes in the approaches that are currently used to measure and regulate emissions.


Nature Chemistry | 2011

Carbon oxidation state as a metric for describing the chemistry of atmospheric organic aerosol

Jesse H. Kroll; Neil M. Donahue; Jose L. Jimenez; Sean H. Kessler; Manjula R. Canagaratna; Kevin R. Wilson; Katye E. Altieri; Lynn Mazzoleni; Andrew S. Wozniak; Hendrik Bluhm; Erin R. Mysak; Jared D. Smith; Charles E. Kolb; Douglas R. Worsnop

A detailed understanding of the sources, transformations and fates of organic species in the environment is crucial because of the central roles that they play in human health, biogeochemical cycles and the Earths climate. However, such an understanding is hindered by the immense chemical complexity of environmental mixtures of organics; for example, atmospheric organic aerosol consists of at least thousands of individual compounds, all of which likely evolve chemically over their atmospheric lifetimes. Here, we demonstrate the utility of describing organic aerosol (and other complex organic mixtures) in terms of average carbon oxidation state, a quantity that always increases with oxidation, and is readily measured using state-of-the-art analytical techniques. Field and laboratory measurements of the average carbon oxidation state, using several such techniques, constrain the chemical properties of the organics and demonstrate that the formation and evolution of organic aerosol involves simultaneous changes to both carbon oxidation state and carbon number.


Nature | 2013

Molecular understanding of sulphuric acid–amine particle nucleation in the atmosphere

Joao Almeida; Siegfried Schobesberger; Andreas Kürten; Ismael K. Ortega; Oona Kupiainen-Määttä; Arnaud P. Praplan; Alexey Adamov; A. Amorim; Federico Bianchi; Martin Breitenlechner; A. David; Josef Dommen; Neil M. Donahue; Andrew J. Downard; Eimear M. Dunne; Jonathan Duplissy; Sebastian Ehrhart; Alessandro Franchin; R. Guida; Jani Hakala; Armin Hansel; Martin Heinritzi; Henning Henschel; Tuija Jokinen; Heikki Junninen; Maija K. Kajos; Juha Kangasluoma; Helmi Keskinen; Agnieszka Kupc; Theo Kurtén

Nucleation of aerosol particles from trace atmospheric vapours is thought to provide up to half of global cloud condensation nuclei. Aerosols can cause a net cooling of climate by scattering sunlight and by leading to smaller but more numerous cloud droplets, which makes clouds brighter and extends their lifetimes. Atmospheric aerosols derived from human activities are thought to have compensated for a large fraction of the warming caused by greenhouse gases. However, despite its importance for climate, atmospheric nucleation is poorly understood. Recently, it has been shown that sulphuric acid and ammonia cannot explain particle formation rates observed in the lower atmosphere. It is thought that amines may enhance nucleation, but until now there has been no direct evidence for amine ternary nucleation under atmospheric conditions. Here we use the CLOUD (Cosmics Leaving OUtdoor Droplets) chamber at CERN and find that dimethylamine above three parts per trillion by volume can enhance particle formation rates more than 1,000-fold compared with ammonia, sufficient to account for the particle formation rates observed in the atmosphere. Molecular analysis of the clusters reveals that the faster nucleation is explained by a base-stabilization mechanism involving acid–amine pairs, which strongly decrease evaporation. The ion-induced contribution is generally small, reflecting the high stability of sulphuric acid–dimethylamine clusters and indicating that galactic cosmic rays exert only a small influence on their formation, except at low overall formation rates. Our experimental measurements are well reproduced by a dynamical model based on quantum chemical calculations of binding energies of molecular clusters, without any fitted parameters. These results show that, in regions of the atmosphere near amine sources, both amines and sulphur dioxide should be considered when assessing the impact of anthropogenic activities on particle formation.


Science | 2014

Oxidation products of biogenic emissions contribute to nucleation of atmospheric particles.

Francesco Riccobono; Siegfried Schobesberger; Catherine E. Scott; Josef Dommen; Ismael K. Ortega; Linda Rondo; J. Almeida; A. Amorim; Federico Bianchi; Martin Breitenlechner; A. David; Andrew J. Downard; Eimear M. Dunne; Jonathan Duplissy; Sebastian Ehrhart; Alessandro Franchin; Armin Hansel; Heikki Junninen; Maija K. Kajos; Helmi Keskinen; Agnieszka Kupc; Andreas Kürten; Alexander N. Kvashin; Ari Laaksonen; Katrianne Lehtipalo; Vladimir Makhmutov; Serge Mathot; Tuomo Nieminen; Antti Onnela; Tuukka Petäjä

Out of the Air New-particle formation from gaseous precursors in the atmosphere is a complex and poorly understood process with importance in atmospheric chemistry and climate. Laboratory studies have had trouble reproducing the particle formation rates that must occur in the natural world. Riccobono et al. (p. 717) used the CLOUD (Cosmics Leaving Outdoor Droplets) chamber at CERN to recreate a realistic atmospheric environment. Sulfuric acid and oxidized organic vapors in typical natural concentrations caused particle nucleation at similar rates to those observed in the lower atmosphere. Experiments in the CLOUD chamber at CERN reproduce particle nucleation rates observed in the lower atmosphere. Atmospheric new-particle formation affects climate and is one of the least understood atmospheric aerosol processes. The complexity and variability of the atmosphere has hindered elucidation of the fundamental mechanism of new-particle formation from gaseous precursors. We show, in experiments performed with the CLOUD (Cosmics Leaving Outdoor Droplets) chamber at CERN, that sulfuric acid and oxidized organic vapors at atmospheric concentrations reproduce particle nucleation rates observed in the lower atmosphere. The experiments reveal a nucleation mechanism involving the formation of clusters containing sulfuric acid and oxidized organic molecules from the very first step. Inclusion of this mechanism in a global aerosol model yields a photochemically and biologically driven seasonal cycle of particle concentrations in the continental boundary layer, in good agreement with observations.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Molecular understanding of atmospheric particle formation from sulfuric acid and large oxidized organic molecules

Siegfried Schobesberger; Heikki Junninen; Federico Bianchi; Gustaf Lönn; Mikael Ehn; Katrianne Lehtipalo; Josef Dommen; Sebastian Ehrhart; Ismael K. Ortega; Alessandro Franchin; Tuomo Nieminen; Francesco Riccobono; Manuel A. Hutterli; Jonathan Duplissy; J. Almeida; A. Amorim; Martin Breitenlechner; Andrew J. Downard; Eimear M. Dunne; Maija K. Kajos; Helmi Keskinen; J. Kirkby; Agnieszka Kupc; Andreas Kürten; Theo Kurtén; Ari Laaksonen; Serge Mathot; Antti Onnela; Arnaud P. Praplan; Linda Rondo

Significance The formation of nanoparticles by condensable vapors in the atmosphere influences radiative forcing and therefore climate. We explored the detailed mechanism of particle formation, in particular the role of oxidized organic molecules that arise from the oxidation of monoterpenes, a class of volatile organic compounds emitted from plants. We mimicked atmospheric conditions in a well-controlled laboratory setup and found that these oxidized organics form initial clusters directly with single sulfuric acid molecules. The clusters then grow by the further addition of both sulfuric acid and organic molecules. Some of the organics are remarkably highly oxidized, a critical feature that enables them to participate in forming initial stable molecular clusters and to facilitate the first steps of atmospheric nanoparticle formation. Atmospheric aerosols formed by nucleation of vapors affect radiative forcing and therefore climate. However, the underlying mechanisms of nucleation remain unclear, particularly the involvement of organic compounds. Here, we present high-resolution mass spectra of ion clusters observed during new particle formation experiments performed at the Cosmics Leaving Outdoor Droplets chamber at the European Organization for Nuclear Research. The experiments involved sulfuric acid vapor and different stabilizing species, including ammonia and dimethylamine, as well as oxidation products of pinanediol, a surrogate for organic vapors formed from monoterpenes. A striking resemblance is revealed between the mass spectra from the chamber experiments with oxidized organics and ambient data obtained during new particle formation events at the Hyytiälä boreal forest research station. We observe that large oxidized organic compounds, arising from the oxidation of monoterpenes, cluster directly with single sulfuric acid molecules and then form growing clusters of one to three sulfuric acid molecules plus one to four oxidized organics. Most of these organic compounds retain 10 carbon atoms, and some of them are remarkably highly oxidized (oxygen-to-carbon ratios up to 1.2). The average degree of oxygenation of the organic compounds decreases while the clusters are growing. Our measurements therefore connect oxidized organics directly, and in detail, with the very first steps of new particle formation and their growth between 1 and 2 nm in a controlled environment. Thus, they confirm that oxidized organics are involved in both the formation and growth of particles under ambient conditions.


Nature | 2016

Ion-induced nucleation of pure biogenic particles

J. Kirkby; Jonathan Duplissy; Kamalika Sengupta; Carla Frege; H. Gordon; Christina Williamson; Martin Heinritzi; Mario Simon; Chao Yan; Joao Almeida; Jasmin Tröstl; Tuomo Nieminen; Ismael K. Ortega; Robert Wagner; Alexey Adamov; A. Amorim; Anne-Kathrin Bernhammer; Federico Bianchi; Martin Breitenlechner; Sophia Brilke; Xuemeng Chen; J. S. Craven; Antonio Dias; Sebastian Ehrhart; Alessandro Franchin; Claudia Fuchs; R. Guida; Jani Hakala; C. R. Hoyle; Tuija Jokinen

Atmospheric aerosols and their effect on clouds are thought to be important for anthropogenic radiative forcing of the climate, yet remain poorly understood. Globally, around half of cloud condensation nuclei originate from nucleation of atmospheric vapours. It is thought that sulfuric acid is essential to initiate most particle formation in the atmosphere, and that ions have a relatively minor role. Some laboratory studies, however, have reported organic particle formation without the intentional addition of sulfuric acid, although contamination could not be excluded. Here we present evidence for the formation of aerosol particles from highly oxidized biogenic vapours in the absence of sulfuric acid in a large chamber under atmospheric conditions. The highly oxygenated molecules (HOMs) are produced by ozonolysis of α-pinene. We find that ions from Galactic cosmic rays increase the nucleation rate by one to two orders of magnitude compared with neutral nucleation. Our experimental findings are supported by quantum chemical calculations of the cluster binding energies of representative HOMs. Ion-induced nucleation of pure organic particles constitutes a potentially widespread source of aerosol particles in terrestrial environments with low sulfuric acid pollution.


Nature | 2016

The role of low-volatility organic compounds in initial particle growth in the atmosphere

Jasmin Tröstl; Wayne K. Chuang; H. Gordon; Martin Heinritzi; Chao Yan; Ugo Molteni; Lars Ahlm; Carla Frege; Federico Bianchi; Robert Wagner; Mario Simon; Katrianne Lehtipalo; Christina Williamson; J. S. Craven; Jonathan Duplissy; Alexey Adamov; Joao Almeida; Anne-Kathrin Bernhammer; Martin Breitenlechner; Sophia Brilke; Antonio Dias; Sebastian Ehrhart; Alessandro Franchin; Claudia Fuchs; R. Guida; M. Gysel; Armin Hansel; C. R. Hoyle; Tuija Jokinen; Heikki Junninen

About half of present-day cloud condensation nuclei originate from atmospheric nucleation, frequently appearing as a burst of new particles near midday. Atmospheric observations show that the growth rate of new particles often accelerates when the diameter of the particles is between one and ten nanometres. In this critical size range, new particles are most likely to be lost by coagulation with pre-existing particles, thereby failing to form new cloud condensation nuclei that are typically 50 to 100 nanometres across. Sulfuric acid vapour is often involved in nucleation but is too scarce to explain most subsequent growth, leaving organic vapours as the most plausible alternative, at least in the planetary boundary layer. Although recent studies predict that low-volatility organic vapours contribute during initial growth, direct evidence has been lacking. The accelerating growth may result from increased photolytic production of condensable organic species in the afternoon, and the presence of a possible Kelvin (curvature) effect, which inhibits organic vapour condensation on the smallest particles (the nano-Köhler theory), has so far remained ambiguous. Here we present experiments performed in a large chamber under atmospheric conditions that investigate the role of organic vapours in the initial growth of nucleated organic particles in the absence of inorganic acids and bases such as sulfuric acid or ammonia and amines, respectively. Using data from the same set of experiments, it has been shown that organic vapours alone can drive nucleation. We focus on the growth of nucleated particles and find that the organic vapours that drive initial growth have extremely low volatilities (saturation concentration less than 10−4.5 micrograms per cubic metre). As the particles increase in size and the Kelvin barrier falls, subsequent growth is primarily due to more abundant organic vapours of slightly higher volatility (saturation concentrations of 10−4.5 to 10−0.5 micrograms per cubic metre). We present a particle growth model that quantitatively reproduces our measurements. Furthermore, we implement a parameterization of the first steps of growth in a global aerosol model and find that concentrations of atmospheric cloud concentration nuclei can change substantially in response, that is, by up to 50 per cent in comparison with previously assumed growth rate parameterizations.


Proceedings of the National Academy of Sciences of the United States of America | 2012

Aging of biogenic secondary organic aerosol via gas-phase OH radical reactions

Neil M. Donahue; Kaytlin M. Henry; Thomas F. Mentel; Astrid Kiendler-Scharr; C. Spindler; Birger Bohn; T. Brauers; Hans P. Dorn; Hendrik Fuchs; R. Tillmann; Andreas Wahner; Harald Saathoff; K.-H. Naumann; O. Möhler; Thomas Leisner; Lars Peter Müller; Marc-Christopher Reinnig; Thorsten Hoffmann; Kent Salo; Mattias Hallquist; Mia Frosch; Merete Bilde; Torsten Tritscher; Peter Barmet; Arnaud P. Praplan; P. F. DeCarlo; Josef Dommen; André S. H. Prévôt; Urs Baltensperger

The Multiple Chamber Aerosol Chemical Aging Study (MUCHACHAS) tested the hypothesis that hydroxyl radical (OH) aging significantly increases the concentration of first-generation biogenic secondary organic aerosol (SOA). OH is the dominant atmospheric oxidant, and MUCHACHAS employed environmental chambers of very different designs, using multiple OH sources to explore a range of chemical conditions and potential sources of systematic error. We isolated the effect of OH aging, confirming our hypothesis while observing corresponding changes in SOA properties. The mass increases are consistent with an existing gap between global SOA sources and those predicted in models, and can be described by a mechanism suitable for implementation in those models.


Journal of Geophysical Research | 2008

Effects of gas particle partitioning and aging of primary emissions on urban and regional organic aerosol concentrations

Manish K. Shrivastava; Timothy E. Lane; Neil M. Donahue; Spyros N. Pandis; Allen L. Robinson

[1] Organic aerosols (OA) are a highly dynamic system dominated by both variable gas particle partitioning and chemical evolution; however, these phenomena are poorly represented in current air quality models. The chemical transport model Comprehensive Air-Quality Model with extensions dealing with particulate matter (PMCAMx) was extended to investigate the effects of partitioning and photochemical aging of primary emissions on OA concentrations in the eastern United States during July 2001 and January 2002. In both the summer and the winter, much of the traditionally defined primary OA (POA) emissions evaporate, creating a large pool of low-volatility organic vapors. During the summertime, photochemical aging of these vapors creates substantial oxygenated OA that is regionally distributed. Little production of oxygenated OA is predicted in the winter because oxidant levels are low. OA formed from the oxidation of low-volatility vapors is most important in and around urban areas located in the northeast and midwest. In rural locations and throughout the southeast, traditional secondary OA (SOA) formed from biogenic precursors is predicted to be the dominant class of oxidized OA. PMCAMx can only reproduce the large fractional contributions of oxidized OA observed in the atmosphere if some of the POA in the model evaporates. Sensitivity analysis illustrates that the volatility distribution of the existing POA emissions and the amount of intermediate volatility compounds not accounted for in current inventories are key uncertainties. At an upper bound, better accounting for emissions of low-volatility organics has the potential to increase summertime OA concentrations in northeastern and midwestern cities by as much as 50%.

Collaboration


Dive into the Neil M. Donahue's collaboration.

Top Co-Authors

Avatar

Allen L. Robinson

Carnegie Mellon University

View shared research outputs
Top Co-Authors

Avatar

Spyros N. Pandis

Carnegie Mellon University

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Albert A. Presto

Carnegie Mellon University

View shared research outputs
Top Co-Authors

Avatar

Tuukka Petäjä

Helsinki Institute of Physics

View shared research outputs
Top Co-Authors

Avatar

Jesse H. Kroll

Pacific Northwest National Laboratory

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge