Isoprene dominates global non-methane volatile organic compound emissions, and impacts tropospheric chemistry by influencing oxidants and aerosols. Isoprene emission rates vary over several orders of magnitude for different plants, and characterizing this immense biological chemodiversity is a challenge for estimating isoprene emission from tropical forests. Here we present the isoprene emission estimates from aircraft eddy covariance measurements over the Amazonian forest. We report isoprene emission rates that are three times higher than satellite top-down estimates and 35% higher than model predictions. The results reveal strong correlations between observed isoprene emission rates and terrain elevations, which are confirmed by similar correlations between satellite-derived isoprene emissions and terrain elevations. We propose that the elevational gradient in the Amazonian forest isoprene emission capacity is determined by plant species distributions and can substantially explain isoprene emission variability in tropical forests, and use a model to demonstrate the resulting impacts on regional air quality. Isoprene emissions are commonly estimated using satellite measurements and model simulations. Here, using eddy covariance, the authors report higher emission rates over the Amazon forest than those estimated with these techniques and a relationship between terrain elevation and isoprene emissions.
Airborne observations reveal elevational gradient in tropical forest isoprene emissions
D. Gu,A. Guenther,J. Shilling,Haofei Yu,Maoyi Huang,Chun Zhao,Qing Yang,S. Martin,P. Artaxo,Saewung Kim,R. Seco,T. Stavrakou,K. Longo,J. Tóta,R. D. de Souza,Oscar Vega,Y. Liu,M. Shrivastava,E. Alves,F. Santos,G. Leng,Zhiyuan Hu
Published 2017 in Nature Communications
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- Publication year
2017
- Venue
Nature Communications
- Publication date
2017-05-23
- Fields of study
Medicine, Environmental Science
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Semantic Scholar, PubMed
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