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Dive into the research topics where Joelle Buxmann is active.

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Featured researches published by Joelle Buxmann.


Environmental Chemistry | 2015

Consumption of reactive halogen species from sea-salt aerosol by secondary organic aerosol: slowing down the bromine explosion

Joelle Buxmann; Sergej Bleicher; U. Platt; Roland von Glasow; Roberto Sommariva; Andreas Held; Cornelius Zetzsch; Johannes Ofner

Environmental context Secondary organic aerosols together with sea-salt aerosols are a major contribution to global aerosols and influence the release of reactive halogens, which affect air quality and human health. In this study, the loss of reactive halogen species from simulated salt aerosols due to three different types of secondary organic aerosols was quantified in chamber experiments and investigated with the help of a numerical model. The loss rate can be included into chemistry models of the atmosphere and help to quantify the halogen budget in nature. Abstract The interaction between secondary organic aerosols (SOAs) and reactive bromine species (e.g. BrO, Br2, HOBr) coexisting in the environment is not well understood and not included in current chemistry models. The present study quantifies the quenching of bromine release from an artificial salt aerosol caused by SOAs from ozonolysis of three precursors (α-pinene, catechol or guaiacol) in a Teflon smog chamber and incorporates it into a chemical box model. The model simulations perform very well for a blank experiment without SOA precursor, capturing BrO formation, as detected by differential optical absorption spectrometry. A first-order BrO loss rate of 0.001s–1 on the surface of SOA represents the overall effective Brx (total inorganic bromine) loss included in the model. Generally, the model agrees with the maximum BrO mixing ratio in time and magnitude, with some disagreements in the exact shape. Formation of reactive OClO was observed in the presence of organics but could not be reproduced by the model. According to current knowledge, most inorganic chlorine would be in the form of HCl in the presence of organics, as predicted by the model. In order to reproduce the net effects of the presence of SOA, the effective uptake coefficients of reactive bromine on the SOA surface are estimated to be 0.01, 0.01 and 0.004 for α-pinene, catechol and guaiacol respectively. The uptake coefficient can now be incorporated into box models and even global models, where sinks for bromine species are thought to be inadequately represented.


Atmospheric Chemistry and Physics | 2010

In situ measurements of molecular iodine in the marine boundary layer: the link to macroalgae and the implications for O 3 , IO, OIO and NO x

Rujin Huang; K. Seitz; Joelle Buxmann; Denis Pöhler; Karen E. Hornsby; Lucy J. Carpenter; U. Platt; Thorsten Hoffmann


Atmospheric Chemistry and Physics | 2012

Halogenation processes of secondary organic aerosol and implications on halogen release mechanisms

Johannes Ofner; Natalja Balzer; Joelle Buxmann; Hinrich Grothe; Philippe Schmitt-Kopplin; U. Platt; Cornelius Zetzsch


Atmospheric Chemistry and Physics | 2009

The spatial distribution of the reactive iodine species IO from simultaneous active and passive DOAS observations

K. Seitz; Joelle Buxmann; Denis Pöhler; T. Sommer; J. Tschritter; T. Neary; Colin D. O'Dowd; U. Platt


International Journal of Chemical Kinetics | 2012

Observations of bromine explosions in smog chamber experiments above a model salt pan

Joelle Buxmann; Natalja Balzer; Sergej Bleicher; U. Platt; Cornelius Zetzsch


Atmospheric Chemistry and Physics | 2011

Iodine monoxide at a clean marine coastal site: observations of high frequency variations and inhomogeneous distributions

R. Commane; K. Seitz; Catherine S.E. Bale; William J. Bloss; Joelle Buxmann; Trevor Ingham; U. Platt; Denis Pöhler; Dwayne E. Heard


Atmospheric Chemistry and Physics | 2014

The influence of nitrogen oxides on the activation of bromide and chloride in salt aerosol

Sergej Bleicher; Joelle Buxmann; R. Sander; T. P. Riedel; Joel A. Thornton; U. Platt; Cornelius Zetzsch


Atmospheric Measurement Techniques | 2013

An instrument for measurements of BrO with LED-based Cavity-Enhanced Differential Optical Absorption Spectroscopy

D. J. Hoch; Joelle Buxmann; Holger Sihler; Denis Pöhler; C. Zetzsch; U. Platt


Atmospheric Measurement Techniques Discussions | 2012

A Cavity-Enhanced Differential Optical Absorption Spectroscopy instrument for measurement of BrO, HCHO, HONO and O 3

D. J. Hoch; Joelle Buxmann; Holger Sihler; Denis Pöhler; C. Zetzsch; U. Platt


Canadian International Petroleum Conference | 2009

Air Quality Monitoring in the Canadian Oil Sands: Tests of New Technology

U. Platt; K. Seitz; Joelle Buxmann; H.F. Thimm

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U. Platt

Heidelberg University

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K. Seitz

Heidelberg University

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