Michael P. Vermeuel
Earth and Planetary Sciences · Purdue University West Lafayette
Publications
48
Citations
845
Est. group size
—
Recurring co-author estimate
Active years
10
Publishing since 2017
Michael P. Vermeuel studies the exchange of gases and small particles between the Earth's surface (forests, oceans, and cities) and the atmosphere, focusing on how plants, wildfires, and urban environments emit and chemically transform reactive carbon compounds. His work combines field measurements with mass spectrometers and chemical transport models to understand how these emissions affect air quality, ozone formation, and aerosol (fine particle) levels. This research is relevant to understanding both natural ecosystem-atmosphere interactions and human-influenced urban and marine environments.
Publication output rose from 2017 to a peak around 2019-2021, then gradually declined through 2022-2025, with output stabilizing at a lower level in recent years.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Surface temperatures drive strong seasonality in urban reactive carbon emissions
2026
- Fluxes of reactive organic gases seasonal intercomparison of chemical lifetimes and emissions
DRYAD · 2026
- Emerging drivers of urban aerosol increase global change vulnerability in a US megacity
npj Climate and Atmospheric Science · 2025
- Wildfire Smoke Directly Changes Biogenic Volatile Organic Emissions and Photosynthesis of Ponderosa Pines
Geophysical Research Letters · 2024
- In-Canopy Chemistry, Emissions, Deposition, and Surface Reactivity Compete to Drive Bidirectional Forest-Atmosphere Exchange of VOC Oxidation Products
ACS ES&T Air · 2024
- A Vertically Resolved Canopy Improves Chemical Transport Model Predictions of Ozone Deposition to North Temperate Forests
Journal of Geophysical Research Atmospheres · 2024
- A vertically-resolved canopy improves chemical transport model predictions of ozone deposition to north temperate forests
2024
- Observations of biogenic volatile organic compounds over a mixed temperate forest during the summer to autumn transition
Atmospheric chemistry and physics · 2023
- Closing the Reactive Carbon Flux Budget: Observations From Dual Mass Spectrometers Over a Coniferous Forest
Journal of Geophysical Research Atmospheres · 2023
- Comment on egusphere-2022-1015
2023
- Closing the reactive carbon flux budget: Observations from dual mass spectrometers over a coniferous forest
2023
- Oceanic emissions of dimethyl sulfide and methanethiol and their contribution to sulfur dioxide production in the marine atmosphere
Atmospheric chemistry and physics · 2022
- Observations of biogenic volatile organic compounds over a mixed temperate forest during the summer to autumn transition
2022
- Supplementary material to "Observations of biogenic volatile organic compounds over a mixed temperate forest during the summer to autumn transition"
2022
- Comment on acp-2021-891
2022
- AGU Fall Meeting Abstracts×4
- Journal of Geophysical Research Atmospheres×3
- Bulletin of the American Meteorological Society×3
- Atmospheric measurement techniques×3
- Atmospheric chemistry and physics×2
- P. B. Shepson
Earth and Planetary Sciences · Purdue University West Lafayette
- Brandon Bottorff
Earth and Planetary Sciences · Indiana University
- P. S. Stevens
Earth and Planetary Sciences · Indiana University
- Mengyun Li
Earth and Planetary Sciences · The Ohio State University
- Daniel M. Murphy
Earth and Planetary Sciences · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
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