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  • Total atmospheric mercury deposition in forested areas in South Korea

    In this study, mercury (Hg) was sampled weekly in dry and wet deposition and throughfall and monthly in litterfall, and as it was volatilized from soil from August 2008 to February 2010 to identify the factors influencing the amount of atmospheric Hg deposited to forested areas in a temperate deciduous forest in South Korea. For this location there was no significant correlation between the estimated monthly dry deposition flux (litterfall + throughfall – wet deposition) (6.7 µg m<sup>−2</sup> yr<sup>−1</sup>) and directly measured dry deposition (9.9 µg m<sup>−2</sup> yr<sup>−1</sup>) likely due primarily to Hg losses from the litterfall collector. Dry deposition fluxes in cold seasons (fall and winter) were lower than in warmer seasons (spring and summer). The volume-weighted mean (VWM) Hg concentrations in both precipitation and throughfall were highest in winter, likely due to increased scavenging by snow events. Since South Korea experiences abundant rainfall in summer, VWM Hg concentrations in summer were lower than in other seasons. Litterfall fluxes were highest in the late fall to early winter, when leaves were dropped from the trees (September to November). The cumulative annual Hg emission flux from soil was 6.8 µg m<sup>−2</sup> yr<sup>−1</sup>. Based on these data, the yearly deposition fluxes of Hg calculated using two input approaches (wet deposition + dry deposition or throughfall + litterfall) were 6.8 and 3.6 µg m<sup>−2</sup> yr<sup>−1</sup>, respectively. This is the first reported study which measured the amount of atmospheric Hg deposited to forested areas in South Korea, and thus our results provide useful information to compare against data related to Hg fate and transport in this part of the world.
  • Heterogeneous uptake of amines onto kaolinite in the temperature range of 232&ndash;300&thinsp;K

    Amines contribute to atmospheric reactive nitrogen (N<sub>r</sub>) deposition, new particle formation and the growth of nano- and sub-micron particles. Heterogeneous uptake of amines by ammonium compounds and organic aerosols has been recognized as an important source of particulate organic nitrogen. However, the role of mineral dust in the chemical cycle of amines is unknown because the corresponding reaction kinetics are unavailable. In this study, the heterogeneous uptake of methylamine (MA), dimethylamine (DMA) and trimethylamine (TMA) by kaolinite was investigated in the temperature range of 232&ndash;300&thinsp;K using a Knudsen cell reactor. Lewis acid sites on kaolinite were identified as dominant contributors to the uptake of amines, utilizing Fourier transform infrared spectroscopy. The uptake coefficients (γ) were derived from the mass accommodation coefficients based on the temperature dependence of the γ. The initial effective uptake coefficients (γ<sub>eff</sub>) were (2.27&thinsp;±&thinsp;0.26)&thinsp;×&thinsp;10<sup>&minus;3</sup>, (1.71&thinsp;±&thinsp;0.26)&thinsp;×&thinsp;10<sup>&minus;3</sup> and (2.95&thinsp;±&thinsp;0.63)&thinsp;×&thinsp;10<sup>&minus;3</sup>, respectively, for MA, DMA and TMA on kaolinite at 300&thinsp;K, while they increased ~3-fold with decreasing temperature from 300&thinsp;K to 232&thinsp;K. The adsorption enthalpies (△<i>H</i><sub>obs</sub>) of MA, DMA and TMA on kaolinite were &minus;7.8&thinsp;±&thinsp;0.8, &minus;9.9&thinsp;±&thinsp;2.9 and &minus;9.4&thinsp;±&thinsp;1.0&thinsp;kJ&thinsp;mol<sup>&minus;1</sup>, respectively, and the corresponding entropy values (△<i>S</i><sub>obs</sub>) were &minus;77.1&thinsp;±&thinsp;3.2, &minus;84.1&thinsp;±&thinsp;11.8 and &minus;80.6&thinsp;±&thinsp;3.7&thinsp;J·K<sup>&minus;1</sup>·mol<sup>&minus;1</sup>. The lifetimes of MA, DMA and TMA attributable to heterogeneous uptake by mineral dust were estimated to be 7.2, 11.5 and 7.7&thinsp;h, respectively. These values were comparable to the lifetimes of amines consumed by OH oxidation. Our results reveal that uptake by mineral dust should be considered in models simulating the chemical cycle of amines in the atmosphere. The results will also aid in understanding the possible impacts of amines on human health, air quality, and climate effects.
  • Contribution of dissolved organic matter to submicron water-soluble organic aerosols in the marine boundary layer over the eastern equatorial Pacific

    Stable carbon isotopic compositions of water-soluble organic carbon (WSOC) and organic molecular markers were measured to investigate the relative contributions of the sea surface sources to the water-soluble fraction of submicron organic aerosols collected over the eastern equatorial Pacific during the Tropical Ocean tRoposphere Exchange of Reactive halogens and Oxygenated VOCs (TORERO)/KA-12-01 cruise. On average, the water-soluble organic fraction of the total carbon (TC) mass in submicron aerosols was  ∼  30–35 % in the oceans with the low chlorophyll <i>a</i> (Chl <i>a</i>) concentrations, whereas it was  ∼  60 % in the high-Chl <i>a</i> regions. The average stable carbon isotope ratio of WSOC (<i>δ</i><sup>13</sup>C<sub>WSOC</sub>) was −19.8 ± 2.0 ‰, which was systematically higher than that of TC (<i>δ</i><sup>13</sup>C<sub>TC</sub>) (−21.8 ± 1.4 ‰). We found that in the oceans with both high and low Chl <i>a</i> concentrations the <i>δ</i><sup>13</sup>C<sub>WSOC</sub> was close to the typical values of <i>δ</i><sup>13</sup>C for dissolved organic carbon (DOC), ranging from −22 to −20 ‰ in surface seawater of the tropical Pacific Ocean. This suggests an enrichment of marine biological products in WSOC aerosols in the study region regardless of the oceanic area. In particular, enhanced levels of WSOC and biogenic organic marker compounds together with high values of WSOC / TC ( ∼  60 %) and <i>δ</i><sup>13</sup>C<sub>WSOC</sub> were observed over upwelling areas and phytoplankton blooms, which was attributed to planktonic tissues being more enriched in <i>δ</i><sup>13</sup>C. The <i>δ</i><sup>13</sup>C analysis estimated that, on average, marine sources contribute  ∼  90 ± 25 % of the aerosol carbon, indicating the predominance of marine-derived carbon in the submicron WSOC. This conclusion is supported by Lagrangian trajectory analysis, which suggests that the majority of the sampling points on the ship had been exposed to marine boundary layer (MBL) air for more than 80 % of the time during the previous 7 days. The combined analysis of the <i>δ</i><sup>13</sup>C and monosaccharides, such as glucose and fructose, demonstrated that DOC concentration was closely correlated with the concentration levels of submicron WSOC across the study region regardless of the oceanic area. The result implies that DOC may characterize background organic aerosols in the MBL over the study region.
  • The lifetime of nitrogen oxides in an isoprene-dominated forest

    The lifetime of nitrogen oxides (NO<sub><i>x</i></sub>) affects the concentration and distribution of NO<sub><i>x</i></sub> and the spatial patterns of nitrogen deposition. Despite its importance, the lifetime of NO<sub><i>x</i></sub> is poorly constrained in rural and remote continental regions. We use measurements from a site in central Alabama during the Southern Oxidant and Aerosol Study (SOAS) in summer 2013 to provide new insights into the chemistry of NO<sub><i>x</i></sub> and NO<sub><i>x</i></sub> reservoirs. We find that the lifetime of NO<sub><i>x</i></sub> during the daytime is controlled primarily by the production and loss of alkyl and multifunctional nitrates (ΣANs). During SOAS, ΣAN production was rapid, averaging 90 ppt h<sup>−1</sup> during the day, and occurred predominantly during isoprene oxidation. Analysis of the ΣAN and HNO<sub>3</sub> budgets indicate that ΣANs have an average lifetime of under 2 h, and that approximately 45 % of the ΣANs produced at this site are rapidly hydrolyzed to produce nitric acid. We find that ΣAN hydrolysis is the largest source of HNO<sub>3</sub> and the primary pathway to permanent removal of NO<sub><i>x</i></sub> from the boundary layer in this location. Using these new constraints on the fate of ΣANs, we find that the NO<sub><i>x</i></sub> lifetime is 11 ± 5 h under typical midday conditions. The lifetime is extended by storage of NO<sub><i>x</i></sub> in temporary reservoirs, including acyl peroxy nitrates and ΣANs.
  • Spectral optical layer properties of cirrus from collocated airborne measurements and simulations

    Spectral upward and downward solar irradiances from vertically collocated measurements above and below a cirrus layer are used to derive cirrus optical layer properties such as spectral transmissivity, absorptivity, reflectivity, and cloud top albedo. The radiation measurements are complemented by in situ cirrus crystal size distribution measurements and radiative transfer simulations based on the microphysical data. The close collocation of the radiative and microphysical measurements, above, beneath, and inside the cirrus, is accomplished by using a research aircraft (Learjet 35A) in tandem with the towed sensor platform AIRTOSS (AIRcraft TOwed Sensor Shuttle). AIRTOSS can be released from and retracted back to the research aircraft by means of a cable up to a distance of 4 km. Data were collected from two field campaigns over the North Sea and the Baltic Sea in spring and late summer 2013. One measurement flight over the North Sea proved to be exemplary, and as such the results are used to illustrate the benefits of collocated sampling. The radiative transfer simulations were applied to quantify the impact of cloud particle properties such as crystal shape, effective radius <i>r</i><sub>eff</sub>, and optical thickness <i>τ</i> on cirrus spectral optical layer properties. Furthermore, the radiative effects of low-level, liquid water (warm) clouds as frequently observed beneath the cirrus are evaluated. They may cause changes in the radiative forcing of the cirrus by a factor of 2. When low-level clouds below the cirrus are not taken into account, the radiative cooling effect (caused by reflection of solar radiation) due to the cirrus in the solar (shortwave) spectral range is significantly overestimated.
  • Understanding isoprene photooxidation using observations and modeling over a subtropical forest in the southeastern US

    The emission, dispersion, and photochemistry of isoprene (C<sub>5</sub>H<sub>8</sub>) and related chemical species in the convective boundary layer (CBL) during sunlit daytime were studied over a mixed forest in the southeastern United States by combining ground-based and aircraft observations. Fluxes of isoprene and monoterpenes were quantified at the top of the forest canopy using a high-resolution proton transfer reaction time-of-flight mass spectrometer (PTR-TOF-MS). Snapshot (∼  2 min sampling duration) vertical profiles of isoprene, methyl vinyl ketone (MVK) + methacrolein (MACR), and monoterpenes were collected from aircraft every hour in the CBL (100–1000 m). Both ground-based and airborne collected volatile organic compound (VOC) data are used to constrain the initial conditions of a mixed-layer chemistry model (MXLCH), which is applied to examine the chemical evolution of the O<sub>3</sub>–NO<sub><i>x</i></sub>–HO<sub><i>x</i></sub>–VOC system and how it is affected by boundary layer dynamics in the CBL. The chemical loss rate of isoprene (∼  1 h) is similar to the turbulent mixing timescale (0.1–0.5 h), which indicates that isoprene concentrations are equally dependent on both photooxidation and boundary layer dynamics. Analysis of a model-derived concentration budget suggests that diurnal evolution of isoprene inside the CBL is mainly controlled by surface emissions and chemical loss; the diurnal evolution of O<sub>3</sub> is dominated by entrainment. The NO to HO<sub>2</sub> ratio (NO : HO<sub>2</sub>) is used as an indicator of anthropogenic impact on the CBL chemical composition and spans a wide range (1–163). The fate of hydroxyl-substituted isoprene peroxyl radical (HOC<sub>5</sub>H<sub>8</sub>OO<sup>&middot;</sup>; ISOPOO) is strongly affected by NO : HO<sub>2</sub>, shifting from NO-dominant to NO–HO<sub>2</sub>-balanced conditions from early morning to noontime. This chemical regime change is reflected in the diurnal evolution of isoprene hydroxynitrates (ISOPN) and isoprene hydroxy hydroperoxides (ISOPOOH).
  • BAERLIN2014 – the influence of land surface types on and the horizontal heterogeneity of air pollutant levels in Berlin

    Urban air quality and human health are among the key aspects of future urban planning. In order to address pollutants such as ozone and particulate matter, efforts need to be made to quantify and reduce their concentrations. One important aspect in understanding urban air quality is the influence of urban vegetation which may act as both emitter and sink for trace gases and aerosol particles. In this context, the "Berlin Air quality and Ecosystem Research: Local and long-range Impact of anthropogenic and Natural hydrocarbons 2014" (BAERLIN2014) campaign was conducted between 2 June and 29 August in the metropolitan area of Berlin and Brandenburg, Germany. The predominant goals of the campaign were (1) the characterization of urban gaseous and particulate pollution and its attribution to anthropogenic and natural sources in the region of interest, especially considering the connection between biogenic volatile organic compounds and particulates and ozone; (2) the quantification of the impact of urban vegetation on organic trace gas levels and the presence of oxidants such as ozone; and (3) to explain the local heterogeneity of pollutants by defining the distribution of sources and sinks relevant for the interpretation of model simulations. In order to do so, the campaign included stationary measurements at urban background station and mobile observations carried out from bicycle, van and airborne platforms. This paper provides an overview of the mobile measurements (Mobile BAERLIN2014) and general conclusions drawn from the analysis. Bicycle measurements showed micro-scale variations of temperature and particulate matter, displaying a substantial reduction of mean temperatures and particulate levels in the proximity of vegetated areas compared to typical urban residential area (background) measurements. Van measurements extended the area covered by bicycle observations and included continuous measurements of O<sub>3</sub>, NO<sub><i>x</i></sub>, CO, CO<sub>2</sub> and point-wise measurement of volatile organic compounds (VOCs) at representative sites for traffic- and vegetation-affected sites. The quantification displayed notable horizontal heterogeneity of the short-lived gases and particle number concentrations. For example, baseline concentrations of the traffic-related chemical species CO and NO varied on average by up to ±22.2 and ±63.5 %, respectively, on the scale of 100 m around any measurement location. Airborne observations revealed the dominant source of elevated urban particulate number and mass concentrations being local, i.e., not being caused by long-range transport. Surface-based observations related these two parameters predominantly to traffic sources. Vegetated areas lowered the pollutant concentrations substantially with ozone being reduced most by coniferous forests, which is most likely caused by their reactive biogenic VOC emissions. With respect to the overall potential to reduce air pollutant levels, forests were found to result in the largest decrease, followed by parks and facilities for sports and leisure. Surface temperature was generally 0.6–2.1 °C lower in vegetated regions, which in turn will have an impact on tropospheric chemical processes. Based on our findings, effective future mitigation activities to provide a more sustainable and healthier urban environment should focus predominantly on reducing fossil-fuel emissions from traffic as well as on increasing vegetated areas.
  • The evolution of biomass-burning aerosol size distributions due to coagulation: dependence on fire and meteorological details and parameterization

    Biomass-burning aerosols have a significant effect on global and regional aerosol climate forcings. To model the magnitude of these effects accurately requires knowledge of the size distribution of the emitted and evolving aerosol particles. Current biomass-burning inventories do not include size distributions, and global and regional models generally assume a fixed size distribution from all biomass-burning emissions. However, biomass-burning size distributions evolve in the plume due to coagulation and net organic aerosol (OA) evaporation or formation, and the plume processes occur on spacial scales smaller than global/regional-model grid boxes. The extent of this size-distribution evolution is dependent on a variety of factors relating to the emission source and atmospheric conditions. Therefore, accurately accounting for biomass-burning aerosol size in global models requires an <i>effective</i> aerosol size distribution that accounts for this sub-grid evolution and can be derived from available emission-inventory and meteorological parameters.<br><br> In this paper, we perform a detailed investigation of the effects of coagulation on the aerosol size distribution in biomass-burning plumes. We compare the effect of coagulation to that of OA evaporation and formation. We develop coagulation-only parameterizations for effective biomass-burning size distributions using the SAM-TOMAS large-eddy simulation plume model. For the most-sophisticated parameterization, we use the Gaussian Emulation Machine for Sensitivity Analysis (GEM-SA) to build a parameterization of the aged size distribution based on the SAM-TOMAS output and seven inputs: emission median dry diameter, emission distribution modal width, mass emissions flux, fire area, mean boundary-layer wind speed, plume mixing depth, and time/distance since emission. This parameterization was tested against an independent set of SAM-TOMAS simulations and yields <i>R</i><sup>2</sup> values of 0.83 and 0.89 for <i>D</i><sub>pm</sub> and modal width, respectively. The size distribution is particularly sensitive to the mass emissions flux, fire area, wind speed, and time, and we provide simplified fits of the aged size distribution to just these input variables. The simplified fits were tested against 11 aged biomass-burning size distributions observed at the Mt. Bachelor Observatory in August 2015. The simple fits captured over half of the variability in observed <i>D</i><sub>pm</sub> and modal width even though the freshly emitted <i>D</i><sub>pm</sub> and modal widths were unknown. These fits may be used in global and regional aerosol models. Finally, we show that coagulation generally leads to greater changes in the particle size distribution than OA evaporation/formation does, using estimates of OA production/loss from the literature.
  • Role of needle surface waxes in dynamic exchange of mono- and sesquiterpenes

    Biogenic volatile organic compounds (BVOCs) produced by plants have a major role in atmospheric chemistry. The different physicochemical properties of BVOCs affect their transport within and out of the plant as well as their reactions along the way. Some of these compounds may accumulate in or on the waxy surface layer of conifer needles and participate in chemical reactions on or near the foliage surface. The aim of this work was to determine whether terpenes, a key category of BVOCs produced by trees, can be found on the epicuticles of Scots pine (<i>Pinus sylvestris</i> L.) and, if so, how they compare with the terpenes found in shoot emissions of the same tree. We measured shoot-level emissions of pine seedlings at a remote outdoor location in central Finland and subsequently analysed the needle surface waxes for the same compounds. Both emissions and wax extracts were clearly dominated by monoterpenes, but the proportion of sesquiterpenes was higher in the wax extracts. There were also differences in the terpene spectra of the emissions and the wax extracts. The results, therefore, support the existence of BVOC associated to the epicuticular waxes. We briefly discuss the different pathways for terpenes to reach the needle surfaces and the implications for air chemistry.
  • Measurement, growth types and shrinkage of newly formed aerosol particles at an urban research platform

    Budapest platform for Aerosol Research and Training (BpART) was created for advancing long-term on-line atmospheric measurements and intensive aerosol sample collection campaigns in Budapest. A joint study including atmospheric chemistry or physics, meteorology, and fluid dynamics on several-year-long data sets obtained at the platform confirmed that the location represents a well-mixed, average atmospheric environment for the city centre. The air streamlines indicated that the host and neighbouring buildings together with the natural orography play an important role in the near-field dispersion processes. Details and features of the airflow structure were derived, and they can be readily utilised for further interpretations. An experimental method to determine particle diffusion losses in the differential mobility particle sizer (DMPS) system of the BpART facility was proposed. It is based on CPC–CPC (condensation particle counter) and DMPS–CPC comparisons. Growth types of nucleated particles observed in 4 years of measurements were presented and discussed specifically for cities. Arch-shaped size distribution surface plots consisting of a growth phase followed by a shrinkage phase were characterised separately since they supply information on nucleated particles. They were observed in 4.5 % of quantifiable nucleation events. The shrinkage phase took 1 h 34 min in general, and the mean shrinkage rate with standard deviation was −3.8 ± 1.0 nm h<sup>−1</sup>. The shrinkage of particles was mostly linked to changes in local atmospheric conditions, especially in global radiation and the gas-phase H<sub>2</sub>SO<sub>4</sub> concentration through its proxy, or to atmospheric mixing in few cases. Some indirect results indicate that variations in the formation and growth rates of nucleated particles during their atmospheric transport could be a driving force of shrinkage for particles of very small sizes and on specific occasions.
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