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Nature Communications|January 12, 2018
Impact on short-lived climate forcers increases projected warming due to deforestationC E Scott, S A Monks, D V Spracklen, et al.Environmental Science. Processes & Impacts|December 17, 2024
Modelling indoor radical chemistry during the HOMEChem campaignFreja F Østerstrøm, Toby J Carter, David R Shaw, et al.The Science of the Total Environment|November 18, 2005
Measurement and modelling of air pollution and atmospheric chemistry in the U.K. West Midlands conurbation: overview of the PUMA Consortium projectR M Harrison, J Yin, R M Tilling, et al.Proceedings of the National Academy of Sciences of the United States of America|May 26, 2016
Improving our fundamental understanding of the role of aerosol-cloud interactions in the climate systemJohn H Seinfeld, Christopher Bretherton, Kenneth S Carslaw, et al.Science (New York, N.Y.)|February 13, 2001
The detection of large HNO3-containing particles in the winter Arctic stratosphereD W Fahey, R S Gao, K S Carslaw, et al.Reviews of Geophysics (Washington, D.C. : 1985)|August 1, 2020
Bounding Global Aerosol Radiative Forcing of Climate ChangeN Bellouin, J Quaas, E Gryspeerdt, et al.Nature|September 11, 2015
A marine biogenic source of atmospheric ice-nucleating particlesTheodore W Wilson, Luis A Ladino, Peter A Alpert, et al.Nature|June 23, 2017
Strong constraints on aerosol-cloud interactions from volcanic eruptionsFlorent F Malavelle, Jim M Haywood, Andy Jones, et al.Nature|October 5, 2017
Erratum: Strong constraints on aerosol-cloud interactions from volcanic eruptionsFlorent F Malavelle, Jim M Haywood, Andy Jones, et al.Atmospheric Chemistry and Physics|December 4, 2020
Evaluation of global simulations of aerosol particle and cloud condensation nuclei number, with implications for cloud droplet formationGeorge S Fanourgakis, Maria Kanakidou, Athanasios Nenes, et al.Pageof 12