Implications of Snowpack Reactive Bromine Production for Arctic Ice Core Bromine Preservation
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Xuan Wang | J. Dibb | L. Jaeglé | N. Chellman | M. Sigl | B. Alexander | T. Opel | W. Swanson | S. Zhai | Jochen Stutz | Koji Fujita | Joseph R. McConnell | Hanno Meyer | H. Meyer
[1] O. Magand,et al. Photolytic modification of seasonal nitrate isotope cycles in East Antarctica , 2022, Atmospheric Chemistry and Physics.
[2] P. Shepson,et al. Multiphase Reactive Bromine Chemistry during Late Spring in the Arctic: Measurements of Gases, Particles, and Snow , 2022, ACS Earth and Space Chemistry.
[3] U. Platt,et al. Ozone depletion events in the Arctic spring of 2019: a new modeling approach to bromine emissions , 2022, Atmospheric Chemistry and Physics.
[4] H. Skov,et al. Substantial contribution of iodine to Arctic ozone destruction , 2022, Nature Geoscience.
[5] K. Tuite,et al. The Role of Snow in Controlling Halogen Chemistry and Boundary Layer Oxidation During Arctic Spring: A 1D Modeling Case Study , 2022, Journal of Geophysical Research: Atmospheres.
[6] L. Marelle,et al. Comparison of model and ground observations finds snowpack and blowing snow both contribute to Arctic tropospheric reactive bromine , 2022, Atmospheric Chemistry and Physics.
[7] C. Barbante,et al. Sea ice in the northern North Atlantic through the Holocene: Evidence from ice cores and marine sediment records , 2021, Quaternary Science Reviews.
[8] G. Hakim,et al. Reconstructing Arctic Sea Ice Over the Common Era Using Data Assimilation , 2021, Journal of Climate.
[9] A. Saiz‐Lopez,et al. Sea-ice reconstructions from bromine and iodine in ice cores , 2021 .
[10] K. Tuite,et al. Implementation and Impacts of Surface and Blowing Snow Sources of Arctic Bromine Activation Within WRF‐Chem 4.1.1 , 2021, Journal of advances in modeling earth systems.
[11] L. Murray,et al. Anthropogenic Impacts on Tropospheric Reactive Chlorine Since the Preindustrial , 2021, Geophysical Research Letters.
[12] X. Fettweis,et al. Surface melting over the Greenland ice sheet derived from enhanced resolution passive microwave brightness temperatures (1979–2019) , 2021, The Cryosphere.
[13] D. Jacob,et al. Supplementary material to "Global tropospheric halogen (Cl, Br, I) chemistry and its impact on oxidants" , 2021 .
[14] T. Wagner,et al. Time-dependent 3D simulations of tropospheric ozone depletion events in the Arctic spring using the Weather Research and Forecasting model coupled with Chemistry (WRF-Chem) , 2021 .
[15] J. McConnell,et al. Causes of Enhanced Bromine Levels in Alpine Ice Cores During the 20th Century: Implications for Bromine in the Free European Troposphere , 2021, Journal of Geophysical Research: Atmospheres.
[16] J. Burrows,et al. Long-term time series of Arctic tropospheric BrO derived from UV–VIS satellite remote sensing and its relation to first-year sea ice , 2020, Atmospheric Chemistry and Physics.
[17] M. Schneebeli,et al. Snow heterogeneous reactivity of bromide with ozone lost during snow metamorphism , 2020, Atmospheric Chemistry and Physics.
[18] N. Theys,et al. Evaluating the impact of blowing-snow sea salt aerosol on springtime BrO and O3 in the Arctic , 2020, Atmospheric Chemistry and Physics.
[19] M. Frey,et al. Deposition, recycling, and archival of nitrate stable isotopes between the air–snow interface: comparison between Dronning Maud Land and Dome C, Antarctica , 2019, Atmospheric Chemistry and Physics.
[20] P. Place,et al. Pervasive Arctic lead pollution suggests substantial growth in medieval silver production modulated by plague, climate, and conflict , 2019, Proceedings of the National Academy of Sciences.
[21] D. Jacob,et al. The role of chlorine in global tropospheric chemistry , 2019, Atmospheric Chemistry and Physics.
[22] J. Thornton,et al. Airborne Observations of Reactive Inorganic Chlorine and Bromine Species in the Exhaust of Coal‐Fired Power Plants , 2018, Journal of geophysical research. Atmospheres : JGR.
[23] P. Shepson,et al. Springtime Bromine Activation over Coastal and Inland Arctic Snowpacks , 2018, ACS Earth and Space Chemistry.
[24] Crystal B. Schaaf,et al. Quantifying the effects of freeze-thaw transitions and snowpack melt on land surface albedo and energy exchange over Alaska and Western Canada , 2018, Environmental Research Letters.
[25] K. Pratt,et al. Molecular Halogens Above the Arctic Snowpack: Emissions, Diurnal Variations, and Recycling Mechanisms , 2017 .
[26] Stephen E. L. Howell,et al. Effect of Snow Salinity on CryoSat‐2 Arctic First‐Year Sea Ice Freeboard Measurements , 2017 .
[27] C. Buizert,et al. Synchronous volcanic eruptions and abrupt climate change ∼17.7 ka plausibly linked by stratospheric ozone depletion , 2017, Proceedings of the National Academy of Sciences.
[28] S. Nghiem,et al. Snowmelt onset hinders bromine monoxide heterogeneous recycling in the Arctic , 2017 .
[29] J. Comiso,et al. Variability and trends in the Arctic Sea ice cover: Results from different techniques , 2017 .
[30] V. Shah,et al. Sulfate production by reactive bromine: Implications for the global sulfur and reactive bromine budgets , 2017 .
[31] S. Falk,et al. Polar boundary layer bromine explosion and ozone depletion events in the chemistry–climate model EMAC v2.52: implementation and evaluation of AirSnow algorithm , 2017 .
[32] D. Jacob,et al. A new mechanism for atmospheric mercury redox chemistry: implications for the global mercury budget , 2017 .
[33] P. Shepson,et al. Production and Release of Molecular Bromine and Chlorine from the Arctic Coastal Snowpack , 2017 .
[34] L. Jaeglé,et al. Wintertime enhancements of sea salt aerosol in polar regions consistent with a sea ice source from blowing snow , 2016 .
[35] P. Shepson,et al. Constraints on Arctic Atmospheric Chlorine Production through Measurements and Simulations of Cl2 and ClO. , 2016, Environmental science & technology.
[36] D. Jacob,et al. Global impacts of tropospheric halogens (Cl, Br, I) on oxidants and composition in GEOS-Chem , 2016 .
[37] J. Gabrieli,et al. Canadian Arctic sea ice reconstructed from bromine in the Greenland NEEM ice core , 2016, Scientific Reports.
[38] J. McConnell,et al. Sea ice and pollution-modulated changes in Greenland ice core methanesulfonate and bromine , 2016 .
[39] C. Varin,et al. Halogen-based reconstruction of Russian Arctic sea ice area from the Akademii Nauk ice core (Severnaya Zemlya) , 2015 .
[40] D. Blake,et al. Convective transport of very short lived bromocarbons to the stratosphere , 2014 .
[41] D. Weisenstein,et al. Development and evaluation of the unified tropospheric–stratospheric chemistry extension (UCX) for the global chemistry-transport model GEOS-Chem , 2014 .
[42] M. Frey,et al. A review of air-ice chemical and physical interactions (AICI): liquids, quasi-liquids, and solids in snow , 2014 .
[43] P. Shepson,et al. High levels of molecular chlorine in the Arctic atmosphere , 2014 .
[44] C. Varin,et al. Sea ice dynamics influence halogen deposition to Svalbard , 2013 .
[45] H. Meyer,et al. Eurasian Arctic climate over the past millennium as recorded in the Akademii Nauk ice core (Severnaya Zemlya) , 2013 .
[46] D. Donaldson,et al. Photochemical chlorine and bromine activation from artificial saline snow , 2013 .
[47] J. McConnell,et al. Air–snowpack exchange of bromine, ozone and mercury in the springtime Arctic simulated by the 1-D model PHANTAS – Part 1: In-snow bromine activation and its impact on ozone , 2013 .
[48] J. McConnell,et al. Two likely stratospheric volcanic eruptions in the 1450s C.E. found in a bipolar, subannually dated 800 year ice core record , 2013 .
[49] C. Varin,et al. Halogen species record Antarctic sea ice extent over glacial–interglacial periods , 2013 .
[50] D. Donaldson,et al. Can we model snow photochemistry? Problems with the current approaches. , 2013, The journal of physical chemistry. A.
[51] P. Shepson,et al. Photochemical production of molecular bromine in Arctic surface snowpacks , 2013 .
[52] J. McConnell,et al. A new bipolar ice core record of volcanism from WAIS Divide and NEEM and implications for climate forcing of the last 2000 years , 2013 .
[53] Eric Ruggieri,et al. A Bayesian approach to detecting change points in climatic records , 2013 .
[54] Jennie L. Thomas,et al. Overview of the 2007 and 2008 campaigns conducted as part of the Greenland Summit Halogen-HO x Experiment (GSHOX) , 2012 .
[55] M. Frey,et al. Air–snow transfer of nitrate on the East Antarctic Plateau – Part 1: Isotopic evidence for a photolytically driven dynamic equilibrium in summer , 2012 .
[56] P. Shepson,et al. Observations of inorganic bromine (HOBr, BrO, and Br2) speciation at Barrow, Alaska, in spring 2009 , 2012 .
[57] J. Harris,et al. Springtime boundary layer ozone depletion at Barrow, Alaska: Meteorological influence, year-to-year variation, and long-term change , 2012 .
[58] Jennie L. Thomas,et al. Modeling chemistry in and above snow at Summit, Greenland – Part 2: Impact of snowpack chemistry on the oxidation capacity of the boundary layer , 2012 .
[59] P. Shepson,et al. Halogen activation via interactions with environmental ice and snow in the polar lower troposphere and other regions , 2012 .
[60] K. Chance,et al. Characterization of soluble bromide measurements and a case study of BrO observations during ARCTAS , 2012 .
[61] J. McConnell,et al. High-resolution, continuous method for measurement of acidity in ice cores. , 2012, Environmental science & technology.
[62] Jennie L. Thomas,et al. Longpath DOAS observations of surface BrO at Summit, Greenland , 2011 .
[63] Jennie L. Thomas,et al. Observations of hydroxyl and peroxy radicals and the impact of BrO at Summit, Greenland in 2007 and 2008 , 2011 .
[64] D. Voisin,et al. Soluble, light! absorbing species in snow at Barrow, Alaska , 2011 .
[65] P. Shepson,et al. A comparison of Arctic BrO measurements by chemical ionization mass spectrometry and long path‐differential optical absorption spectroscopy , 2011 .
[66] R. Kwok,et al. Analysis of reactive bromine production and ozone depletion in the Arctic boundary layer using 3-D simulations with GEM-AQ: Inference from synoptic-scale patterns , 2011 .
[67] P. Shepson,et al. Halide affinity for the water-air interface in aqueous solutions of mixtures of sodium salts. , 2011, The journal of physical chemistry. A.
[68] Jennie L. Thomas,et al. Modeling chemistry in and above snow at Summit, Greenland – Part 1: Model description and results , 2010 .
[69] L. Ziemba,et al. Bromide and other ions in the snow, firn air, and atmospheric boundary layer at Summit during GSHOX , 2010 .
[70] D. Donaldson,et al. Spectroscopic studies of the heterogeneous reaction between O3(g) and halides at the surface of frozen salt solutions , 2010 .
[71] R. A. Cox,et al. Release of gas-phase halogens by photolytic generation of OH in frozen halide-nitrate solutions: an active halogen formation mechanism? , 2010, The journal of physical chemistry. A.
[72] R. Glasow,et al. Modelling the multiphase near-surface chemistry related to ozone depletions in polar spring , 2009 .
[73] D. Blake,et al. Finding the missing stratospheric Br y : a global modeling study of CHBr 3 and CH 2 Br 2 , 2009 .
[74] Roger G. Barry,et al. Observed sea ice extent in the Russian Arctic, 1933-2006 , 2008 .
[75] J. Lelieveld,et al. Consistent simulation of bromine chemistry from the marine boundary layer to the stratosphere - Part 1: Model description, sea salt aerosols and pH , 2008 .
[76] J. Abbatt,et al. Release of gas-phase halogens from sodium halide substrates: heterogeneous oxidation of frozen solutions and desiccated salts by hydroxyl radicals , 2008 .
[77] J. Pyle,et al. Sea salt aerosol production and bromine release: Role of snow on sea ice , 2008 .
[78] H. Skov,et al. A synthesis of atmospheric mercury depletion event chemistry in the atmosphere and snow , 2008 .
[79] P. Shepson,et al. An overview of snow photochemistry: evidence, mechanisms and impacts , 2007 .
[80] B. Lefer,et al. Light penetration in the snowpack at Summit, Greenland: Part 2 Nitrate photolysis , 2007 .
[81] R. Glasow,et al. The potential importance of frost flowers, recycling on snow, and open leads for ozone depletion events , 2007 .
[82] U. Platt,et al. First-year sea-ice contact predicts bromine monoxide (BrO) levels at Barrow, Alaska better than potential frost flower contact , 2007 .
[83] A. Ohmura,et al. A field study of the hemispherical directional reflectance factor and spectral albedo of dry snow , 2006 .
[84] J. Lelieveld,et al. Mirror image hydrocarbons from Tropical and Boreal forests , 2006 .
[85] R. A. Cox,et al. Tropospheric bromine chemistry and its impacts on ozone: A model study , 2005 .
[86] M. Liuzzo,et al. Emission of bromine and iodine from Mount Etna volcano , 2005 .
[87] D. F. Ogletree,et al. Electron Spectroscopy of Aqueous Solution Interfaces Reveals Surface Enhancement of Halides , 2005, Science.
[88] P. Crutzen,et al. Impact of reactive bromine chemistry in the troposphere , 2004 .
[89] G. Hönninger,et al. A one dimensional model study of the mechanism of halogen liberation and vertical transport in the polar troposphere , 2004 .
[90] A. Ianniello,et al. The origin of sea salt in snow on Arctic sea ice and in coastal regions , 2004 .
[91] Richard B. Alley,et al. Implications of increased Greenland surface melt under global-warming scenarios: ice-sheet simulations , 2004 .
[92] C. Reeves. Atmospheric budget implications of the temporal and spatial trends in methyl bromide concentration , 2003 .
[93] U. Platt,et al. Detection of bromine monoxide in a volcanic plume , 2003, Nature.
[94] B. Quack,et al. Air‐sea flux of bromoform: Controls, rates, and implications , 2003 .
[95] S. Madronich,et al. Calculation of actinic fluxes with a coupled atmosphere-snow radiative transfer model , 2002 .
[96] Gerhard Lammel,et al. Atmospheric lead and bromine in Germany , 2002, Environmental science and pollution research international.
[97] K. Hara,et al. Atmospheric inorganic chlorine and bromine species in Arctic boundary layer of the winter/spring , 2002 .
[98] P. Shepson,et al. Molecular halogens before and during ozone depletion events in the Arctic at polar sunrise: concentrations and sources , 2002 .
[99] W. Simpson,et al. Radiation-transfer modeling of snow-pack photochemical processes during ALERT 2000 , 2002 .
[100] D. Jacob,et al. Constraints from 210Pb and 7Be on wet deposition and transport in a global three‐dimensional chemical tracer model driven by assimilated meteorological fields , 2001 .
[101] D. Blake,et al. Bromine oxide—ozone interaction over the Dead Sea , 2001 .
[102] P. Shepson,et al. The role of Br2 and BrCl in surface ozone destruction at polar sunrise. , 2001, Science.
[103] M. Molina,et al. Phase transitions of sea-salt/water mixtures at low temperatures: Implications for ozone chemistry in the polar marine boundary layer , 2000 .
[104] J. Hemminger,et al. Surface segregation of bromine in bromide doped NaCl: Implications for the seasonal variations in Arctic ozone , 2000 .
[105] Brian A. Michalowski,et al. A computer model study of multiphase chemistry in the Arctic boundary layer during polar sunrise , 2000 .
[106] B. Finlayson‐Pitts,et al. Bromine activation in the troposphere by the dark reaction of O3 with seawater ice , 1998 .
[107] D. Jacob,et al. Global simulation of tropospheric O3-NOx-hydrocarbon chemistry , 1998 .
[108] R. Cicerone,et al. Bromine emissions from leaded gasoline , 1997 .
[109] M. Mozurkewich. Mechanisms for the release of halogens from sea-salt particles by free radical reactions , 1995 .
[110] P. Crutzen,et al. Ozone destruction and photochemical reactions at polar sunrise in the lower Arctic atmosphere , 1988, Nature.
[111] Stephen G. Warren,et al. Optical Properties of Snow , 1982 .
[112] K Habibi,et al. Characterization of particulate matter in vehicle exhaust. , 1973, Environmental science & technology.
[113] © Author(s) 2012. CC Attribution 3.0 License. Atmospheric Chemistry and Physics , 2011 .
[114] T. McDougall,et al. The composition of Standard Seawater and the definition of the Reference-Composition Salinity Scale , 2008 .
[115] D. Fahey,et al. Scientific assessment of ozone depletion, 2002 , 2003 .
[116] H. Meyer,et al. A new deep ice core from Akademii Nauk ice cap, Severnaya Zemlya, Eurasian Arctic: first results , 2002, Annals of Glaciology.
[117] Luria,et al. DOAS measurements of tropospheric bromine oxide in mid-latitudes , 1999, Science.
[118] M. Wesely. Parameterization of surface resistances to gaseous dry deposition in regional-scale numerical models , 1989 .
[119] J. W. Winchester,et al. Seasonal surface ozone and filterable bromine relationship in the high arctic , 1989 .