Spatiotemporal distributions and oceanic emissions of short-lived halocarbons in the East China Sea.
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[1] Hui Liu,et al. Profile of atmospheric VOC over the Yellow Sea, China: A tale of distribution, constraints, and sources. , 2023, The Science of the total environment.
[2] Y. Li,et al. Potential deterioration of ozone pollution in coastal areas caused by marine-emitted halogens: A case study in the Guangdong-Hong Kong-Macao Greater Bay Area. , 2022, Science of the Total Environment.
[3] Wenchao Ding,et al. Effects of methyl halide flux characteristics following Spartina alterniflora invasion in a seaward direction in a temperate salt marsh, China. , 2022, Science of the Total Environment.
[4] I. Pisso,et al. Potential environmental impact of bromoform from Asparagopsis farming in Australia , 2022, Atmospheric Chemistry and Physics.
[5] Julia K. Weiss,et al. Volatile organic compounds in aquatic ecosystems - Detection, origin, significance and applications. , 2022, The Science of the total environment.
[6] Chun-Ying Liu,et al. Spatiotemporal distribution and environmental control factors of halocarbons in the Yangtze River Estuary and its adjacent marine area during autumn and spring. , 2022, Environmental pollution.
[7] C. Barbante,et al. Climate changes modulated the history of Arctic iodine during the Last Glacial Cycle , 2022, Nature Communications.
[8] Qianqian Qi,et al. Coastal observation of halocarbons in the Yellow Sea and East China Sea during winter: Spatial distribution and influence of different factors on the enzyme-mediated reactions. , 2021, Environmental pollution.
[9] Gui‐Peng Yang,et al. Distributions of volatile halocarbons in the marine atmosphere and seawater of the northern South China Sea , 2020 .
[10] Gui‐Peng Yang,et al. Distributions of volatile halocarbons and impacts of ocean acidification on their production in coastal waters of China. , 2020, The Science of the total environment.
[11] M. Tysklind,et al. Will climate change influence production and environmental pathways of halogenated natural products? , 2020, Environmental science & technology.
[12] A. Stenke. Natural control on ozone pollution , 2020, Nature Climate Change.
[13] Gui‐Peng Yang,et al. Volatile halocarbons in the marine atmosphere and surface seawater: Diurnal and spatial variations and influences of environmental factors , 2019, Atmospheric Environment.
[14] Gui‐Peng Yang,et al. Seasonal and spatial variations of chloroform, trichloroethylene, tetrachloroethylene, chlorodibromomethane and bromoform in the Northern Yellow Sea and Bohai Sea , 2019, Environmental Chemistry.
[15] E. Atlas,et al. How marine emissions of bromoform impact the remote atmosphere , 2018, Atmospheric Chemistry and Physics.
[16] A. Saiz‐Lopez,et al. Organic bromine compounds produced in sea ice in Antarctic winter , 2018, Nature Communications.
[17] J. Haigh,et al. Evidence for a continuous decline in lower stratospheric ozone offsetting ozone layer recovery , 2018 .
[18] S. Strahan,et al. Decline in Antarctic Ozone Depletion and Lower Stratospheric Chlorine Determined From Aura Microwave Limb Sounder Observations , 2018 .
[19] M. Toohey,et al. Delivery of halogenated very short-lived substances from the west Indian Ocean to the stratosphere during the Asian summer monsoon , 2017 .
[20] E. Atlas,et al. Introduction to special issue on natural halocarbons in the atmosphere , 2017, Journal of Atmospheric Chemistry.
[21] Zhen He,et al. Spatio-temporal distributions of chlorofluorocarbons and methyl iodide in the Changjiang (Yangtze River) estuary and its adjacent marine area. , 2016, Marine pollution bulletin.
[22] A. Kappler,et al. Predominance of biotic over abiotic formation of halogenated hydrocarbons in hypersaline sediments in Western Australia. , 2014, Environmental science & technology.
[23] S. Mckeen,et al. The very short-lived ozone depleting substance CHBr 3 (bromoform): revised UV absorption spectrum, atmospheric lifetime and ozone depletion potential , 2013 .
[24] Hong‐Hai Zhang,et al. Halocarbons in the marine atmosphere and surface seawater of the south Yellow Sea during spring , 2013 .
[25] C. E. Jones,et al. Global sea-to-air flux climatology for bromoform, dibromomethane and methyl iodide , 2013 .
[26] P. Fraser,et al. Long‐term variation of atmospheric methyl iodide and its link to global environmental change , 2012 .
[27] K. Krüger,et al. Impact of the marine atmospheric boundary layer conditions on VSLS abundances in the eastern tropical and subtropical North Atlantic Ocean , 2012 .
[28] Chia-Yu Lin,et al. Bromoform production from seawater treated with bromoperoxidase , 2012 .
[29] C. Schleper,et al. Correlating microbial community profiles with geochemical data in highly stratified sediments from the Arctic Mid-Ocean Ridge , 2012, Proceedings of the National Academy of Sciences.
[30] R. A. Cox. Evaluation of laboratory kinetics and photochemical data for atmospheric chemistry applications. , 2012, Chemical Society reviews.
[31] R. Roy,et al. The relationship between volatile halocarbons and phytoplankton pigments during a Trichodesmium bloom in the coastal eastern Arabian Sea , 2011 .
[32] S. Yvon-Lewis,et al. CHBr3, CH2Br2, and CHClBr2 in U.S. coastal waters during the Gulf of Mexico and East Coast Carbon cruise , 2011 .
[33] D. J. Franklin,et al. Iodomethane production by two important marine cyanobacteria: Prochlorococcus marinus (CCMP 2389) and Synechococcus sp. (CCMP 2370) , 2011 .
[34] Gui-Peng Yang,et al. Purge-and-Trap Gas Chromatography Method for Analysis of Methyl Chloride and Methyl Bromide in Seawater , 2010 .
[35] C. E. Jones,et al. Coastal measurements of short-lived reactive iodocarbons and bromocarbons at Roscoff, Brittany during the RHaMBLe campaign , 2009 .
[36] D. Blake,et al. Finding the missing stratospheric Br y : a global modeling study of CHBr 3 and CH 2 Br 2 , 2009 .
[37] E. Atlas,et al. Bromoform and dibromomethane above the Mauritanian upwelling: Atmospheric distributions and oceanic emissions , 2007 .
[38] S. Montzka,et al. Oceanic distributions and emissions of short‐lived halocarbons , 2007 .
[39] D. Wallace,et al. Production of methyl iodide in the tropical Atlantic Ocean , 2004 .
[40] P. Crutzen,et al. Impact of reactive bromine chemistry in the troposphere , 2004 .
[41] P. Liss,et al. Marine organohalogens in the atmosphere over the Atlantic and Southern Oceans , 2003 .
[42] B. Quack,et al. Air‐sea flux of bromoform: Controls, rates, and implications , 2003 .
[43] J. Seinfeld,et al. Marine aerosol formation from biogenic iodine emissions , 2002, Nature.
[44] Hiroshi Ichikawa,et al. The Current System in the Yellow and East China Seas , 2002 .
[45] S. Manley,et al. Physiological constraints on bromoform (CHBr3) production by Ulva lactuca (Chlorophyta) , 2001 .
[46] W. Sturges,et al. Natural emissions of chlorine‐containing gases: Reactive Chlorine Emissions Inventory , 1999 .
[47] S. Manley,et al. Methyl iodide production from marine phytoplankton cultures , 1997 .
[48] T. Tanhua,et al. Reduction of volatile halocarbons in anoxic seawater, results from a study in the Black Sea , 1996 .
[49] R. Moore,et al. Determination of Henry's Law constants for a suite of naturally occurring halogenated methanes in seawater , 1995 .
[50] R. Moore,et al. Volatile biogenic halocarbons in the northwest Atlantic , 1993 .
[51] R. Wanninkhof. Relationship between wind speed and gas exchange over the ocean , 1992 .
[52] S. Manley,et al. Methyl iodide (CH3I) production by kelp and associated microbes , 1988 .
[53] K. A. Newman,et al. Volatile Halogenated Organic Compounds Released to Seawater from Temperate Marine Macroalgae , 1985, Science.
[54] J. C. Cook,et al. Halohydrocarbon Synthesis by Bromoperoxidase , 1978, Science.
[55] Gui‐Peng Yang,et al. Distributions and sea-to-air fluxes of volatile halocarbons in the East China Sea in early winter. , 2013, Chemosphere.
[56] P. Liss,et al. Flux of Gases across the Air-Sea Interface , 1974, Nature.