0000000000021952

AUTHOR

Martin Brüggemann

0000-0003-2106-9691

showing 7 related works from this author

Urban organic aerosol composition in Eastern China differs from North to South: Molecular insight from a liquid chromatography-Orbitrap mass spectrom…

2019

Particulate air pollution in China is influencing human health, ecosystem and climate. However, the chemical composition of particulate aerosol, especially of the organic fraction, is still not well understood. In this study, particulate aerosol samples with a diameter ≤ 2.5 μm (PM2.5) were collected in January 2014 in three cities located in Northeast, East and Southeast China, i.e., Changchun, Shanghai and Guangzhou, respectively. Organic aerosol (OA) in the PM2.5 samples was analyzed by ultrahigh performance liquid chromatography (UHPLC) coupled to high-resolution Orbitrap mass spectrometry in both negative mode (ESI−) and positive mode electrospray ioni…

ChromatographylawChemistryElectrospray ionizationCHONMass spectrumParticulatesMass spectrometryOrbitrapChemical compositionlaw.inventionAerosol
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Critical assessment of ionization patterns and applications of ambient desorption/ionization mass spectrometry using FAPA-MS

2016

Ambient desorption/ionization mass spectrometry (MS) has gained growing interest during the last decade due to its high analytical performance and yet simplicity. Here, one of the recently developed ambient desorption/ionization MS sources, the flowing atmospheric-pressure afterglow (FAPA) source, was investigated in detail regarding background ions and typical ionization patterns in the positive as well as the negative ion mode for a variety of compound classes, comprising alkanes, alcohols, aldehydes, ketones, carboxylic acids, organic peroxides and alkaloids. A broad range of signals for adducts and losses was found, besides the usually emphasized detection of quasimolecular ions, i.e. […

Desorption electrospray ionizationChemical ionizationChemistry010401 analytical chemistryAnalytical chemistryAtmospheric-pressure chemical ionization010402 general chemistryMass spectrometry01 natural sciencesIon source0104 chemical sciencesAtmospheric-pressure laser ionizationDirect electron ionization liquid chromatography–mass spectrometry interfaceSpectroscopyAmbient ionizationJournal of Mass Spectrometry
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Interfacial photochemistry of biogenic surfactants: a major source of abiotic volatile organic compounds

2017

Films of biogenic compounds exposed to the atmosphere are ubiquitously found on the surfaces of cloud droplets, aerosol particles, buildings, plants, soils and the ocean. These air/water interfaces host countless amphiphilic compounds concentrated there with respect to in bulk water, leading to a unique chemical environment. Here, photochemical processes at the air/water interface of biofilm-containing solutions were studied, demonstrating abiotic VOC production from authentic biogenic surfactants under ambient conditions. Using a combination of online-APCI-HRMS and PTR-ToF-MS, unsaturated and functionalized VOCs were identified and quantified, giving emission fluxes comparable to previous …

Lysis010504 meteorology & atmospheric sciencesRadical010501 environmental sciencesPhotochemistry01 natural sciencesMatrix (chemical analysis)AtmosphereSurface-Active AgentsPhysical and Theoretical Chemistry0105 earth and related environmental sciencesAbiotic componentAerosols[SDU.OCEAN]Sciences of the Universe [physics]/Ocean AtmosphereVolatile Organic CompoundsChemistryAtmosphere[CHIM.CATA]Chemical Sciences/CatalysisPhotochemical Processes[SDE.ES]Environmental Sciences/Environmental and SocietyAerosol13. Climate actionAtmospheric chemistryEnvironmental chemistrySoil water[CHIM.OTHE]Chemical Sciences/Other
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Real-time detection of highly oxidized organosulfates and BSOA marker compounds during the F–BEACh 2014 field study

2017

Abstract. The chemical composition of organic aerosols was analyzed using complementary mass spectrometric techniques during a field study in Central Europe in July 2014 (Fichtelgebirge – Biogenic Emission and Aerosol Chemistry, F–BEACh 2014). Aerosols were analyzed in real-time by Aerosol Flowing Atmospheric-Pressure Afterglow Mass Spectrometry (AeroFAPA–MS), Aerosol Mass Spectrometry (AMS), and Chemical Ionization Atmospheric-Pressure interface Time-of-Flight Mass Spectrometry (CI–APiToF–MS). In addition, offline detection of acidic organic compounds was conducted by non-target screening of filter samples using High Resolution Mass Spectrometry (HRMS) in combination with Ultra-High Pressu…

Atmospheric Science010504 meteorology & atmospheric sciencesAnalytical chemistrychemistry.chemical_element010501 environmental sciencesMass spectrometry010402 general chemistry01 natural scienceslcsh:Chemistrychemistry.chemical_compoundRelative humiditySulfateChemical composition0105 earth and related environmental sciences010401 analytical chemistry[CHIM.CATA]Chemical Sciences/CatalysisParticulatesSulfur[SDE.ES]Environmental Sciences/Environmental and Societylcsh:QC1-999Aerosol0104 chemical scienceslcsh:QD1-999chemistry13. Climate actionEnvironmental chemistryHYSPLITlcsh:Physics
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Analysis of Organic Aerosols Using a Micro-Orifice Volatilization Impactor Coupled to an Atmospheric-Pressure Chemical Ionization Mass Spectrometer

2014

We present the development and characterization of a combination of a micro-orifice volatilization impactor (MOVI) and an ion trap mass spectrometer (IT/MS) with an atmospheric-pressure chemical ionization (APCI) source. The MOVI is a multi-jet impactor with 100 nozzles, allowing the collection of aerosol particles by inertial impaction on a deposition plate. The pressure drop behind the nozzles is approximately 5%, resulting in a pressure of 96 kPa on the collection surface for ambient pressures of 101.3 kPa. The cut-point diameter (diameter of 50% collection efficiency) is at 0.13 μm for a sampling flow rate of 10 L min–1. After the collection step, aerosol particles are evaporated by he…

Carboxylic AcidsAnalytical chemistryAtmospheric-pressure chemical ionizationMass spectrometryMass SpectrometryOzoneHumansRelative humiditySpectroscopyBicyclic MonoterpenesAerosolsIonsChemical ionizationChromatographyTerpenesChemistryGeneral MedicineAtomic and Molecular Physics and OpticsAerosolAtmospheric PressureDeposition (aerosol physics)MonoterpenesAerosol mass spectrometryIon trapVolatilizationOxidation-ReductionEuropean Journal of Mass Spectrometry
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Real-Time Analysis of Ambient Organic Aerosols Using Aerosol Flowing Atmospheric-Pressure Afterglow Mass Spectrometry (AeroFAPA-MS).

2015

Organic compounds contribute to a major fraction of atmospheric aerosols and have significant impacts on climate and human health. However, because of their chemical complexity, their measurement remains a major challenge for analytical instrumentation. Here we present the development and characterization of a new soft ionization technique that allows mass spectrometric real-time detection of organic compounds in aerosols. The aerosol flowing atmospheric-pressure afterglow (AeroFAPA) ion source is based on a helium glow discharge plasma, which generates excited helium species and primary reagent ions. Ionization of the analytes occurs in the afterglow region after thermal desorption and pro…

AerosolsIonsAtmospheric pressureChemistryAnalytical chemistryGeneral Chemistryrespiratory systemMass spectrometryIon sourceMass SpectrometryAerosolAfterglowIonAtmospheric PressureComputer SystemsIonizationMass spectrumEnvironmental ChemistryHumansOrganic ChemicalsEnvironmental sciencetechnology
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Online atmospheric pressure chemical ionization ion trap mass spectrometry (APCI-IT-MS<sup>n</sup>) for measuring organic…

2012

Abstract. The field application of an aerosol concentrator in conjunction with an atmospheric pressure chemical ionization ion trap mass spectrometer (APCI-IT-MS) at the boreal forest station SMEAR II at Hyytiälä, Finland, is demonstrated in this study. APCI is a soft-ionization technique allowing online measurements of organic acids in the gas and particle phase. The detection limit for the acid species in the particle phase was improved by a factor of 7.5 to 11 (e.g. ∼40 ng m3 for pinonic acid) by using the miniature versatile aerosol concentration enrichment system (mVACES) upstream of the mass spectrometer. The APCI-IT-MS was calibrated in the negative ion mode with two biogenic organic…

Detection limitchemistry.chemical_classificationAtmospheric Science010504 meteorology & atmospheric sciencesChemistryAnalytical chemistryAtmospheric-pressure chemical ionization010501 environmental sciencesMass spectrometry01 natural sciencesAerosolIon13. Climate actionIon trapElectron ionization0105 earth and related environmental sciencesOrganic acidAtmospheric Measurement Techniques
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