Laura Revell
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Associate Professor
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Dr. Laura Revell is an Associate Professor at the University of Canterbury in New Zealand. Her research interests encompass marine aerosol impacts on air quality and climate change, rocket launch emissions, sustainable practices for space exploration, and the environmental implications of microplastics. Recent publications include studies on the effects of ozone depletion on Antarctic biota and the sensitivity of atmospheric dimethyl sulfide in the Southern Ocean. She is also involved in the development of geospatial data processing toolkits for environmental modeling.
Recent Grants
Grant: Open
Airborne microplastics in a changing climate
Open Date: 2023-01-01
Close Date: 2028-01-01
Grant: Close
Particulate matter emissions maps for cities
Open Date: 2018-10-01
Close Date: 2020-09-30
Articles (20)
Extended ozone depletion and reduced snow and ice cover—Consequences for Antarctic biota
Stratospheric ozone, which has been depleted in recent decades by the release of anthropogenic gases, is critical for shielding the biosphere against ultraviolet‐B (UV‐B) radiation. Although the ozone layer is expected to recover before the end of the 21st century, a hole over Antarctica continues to appear each year. Ozone depletion usually peaks between September and October, when fortunately, most Antarctic terrestrial vegetation and soil biota is frozen, dormant and protected under snow cover. Similarly, much marine life is protected by sea ice cover. The ozone hole used to close before the onset of Antarctic summer, meaning that most biota were not exposed to severe springtime UV‐B fluxes. However, in recent years, ozone depletion has persisted into December, which marks the beginning of austral summer. Early summertime ozone depletion is concerning: high incident UV‐B radiation coincident with snowmelt and emergence of vegetation will mean biota is more exposed. The start of summer is also peak breeding season for many animals, thus extreme UV‐B exposure (UV index up to 14) may come at a vulnerable time in their life cycle. Climate change, including changing wind patterns and strength, and particularly declining sea ice, are likely to compound UV‐B exposure of Antarctic organisms, through earlier ice and snowmelt, heatwaves and droughts. Antarctic field research conducted decades ago tended to study UV impacts in isolation and more research that considers multiple climate impacts, and the true magnitude and timing of current UV increases is needed.
Year:
2024
Collaborators (23)
Rachele Ossola
-
Luke James Harrington
Senior Lecturer in Climate Change
University of Waikato
Olga Pantos
Institute of Environmental Sciences and Research
Manoj Joshi
University of East Anglia
Ed Hawkins
-
Paul Barnes
Professor and J.H. Mullahy Endowed Chair in Environmental Biology
Loyola University New Orleans
Alkiviadis Bais
Professor
Aristotle University of Thessaloniki
Alexander Archibald
Lecturer in atmospheric chemistry modelling
University of Cambridge
Adrian McDonald
University of Canterbury
Sally Gaw
Associate Professor / Director
University of Canterbury
Hunter Douglas
University of Canterbury
Sean Hartery
Lecturer
Augusta University
Laura Bruckman
Associate Professor
Case Western Reserve University
Catherine Hardacre
Research and Teaching Fellow
University of Canterbury
Alex Schuddeboom
Assistant Lecturer
University of Canterbury
Marwan Katurji
Lecturer
University of Canterbury
Dave Frame
Professor
University of Canterbury
Eric C. Le Ru
Victoria University of Wellington
Sharon A. Robinson
-
shona mackie
University of Otago
Michele Bannister
Senior Lecturer
University of Canterbury
James Weber
University of Reading
Jonny Williams
University of Reading

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