How sensitive is the recovery of stratospheric ozone to changes in concentrations of very short-lived bromocarbons?
Atmospheric Chemistry and Physics
(2014)
14
10431
(doi: 10.5194/acp-14-10431-2014)
Lightning NOx, a key chemistry-climate interaction: Impacts of future climate change and consequences for tropospheric oxidising capacity
Atmospheric Chemistry and Physics
(2014)
14
9871
(doi: 10.5194/acp-14-9871-2014)
Influence of isoprene chemical mechanism on modelled changes in tropospheric ozone due to climate and land use over the 21st century
Atmospheric Chemistry and Physics Discussions
(2014)
14
22385
(doi: 10.5194/acpd-14-22385-2014)
Long-term halocarbon observations from a coastal and an inland site in Sabah, Malaysian Borneo
Atmospheric Chemistry and Physics
(2014)
14
8369
(doi: 10.5194/acp-14-8369-2014)
Bromocarbons in the tropical coastal and open ocean atmosphere during the 2009 Prime Expedition Scientific Cruise (PESC-09)
Atmospheric Chemistry and Physics
(2014)
14
8137
(doi: 10.5194/acp-14-8137-2014)
The impact of polar stratospheric ozone loss on Southern Hemisphere stratospheric circulation and climate
Atmospheric Chemistry and Physics Discussions
(2014)
14
18049
(doi: 10.5194/acpd-14-18049-2014)
Heterogeneous reaction of N2O5 with airborne TiO2 particles and its implication for stratospheric particle injection
Atmospheric Chemistry and Physics
(2014)
14
6035
(doi: 10.5194/acp-14-6035-2014)
Representing ozone extremes in European megacities: the importance of resolution in a global chemistry climate model
Atmospheric Chemistry and Physics
(2014)
14
3899
(doi: 10.5194/acp-14-3899-2014)
Correction to “Impacts of climate change, ozone recovery, and increasing methane on surface ozone and the tropospheric oxidizing capacity”
Journal of Geophysical Research: Atmospheres
(2014)
119
5028
(doi: 10.1002/2014jd021515)
How sensitive is the recovery of stratospheric ozone to changes in concentrations of very short lived bromocarbons?
Atmospheric Chemistry and Physics Discussions
(2014)
14
9729
(doi: 10.5194/acpd-14-9729-2014)
Lightning NOx, a key chemistry–climate interaction: impacts of future climate change and consequences for tropospheric oxidising capacity
Atmospheric Chemistry and Physics Discussions
(2014)
14
8753
(doi: 10.5194/acpd-14-8753-2014)
Methane and carbon dioxide fluxes and their regional scalability for the European Arctic wetlands during the MAMM project in summer 2012
Atmospheric Chemistry and Physics Discussions
(2014)
14
8455
(doi: 10.5194/acpd-14-8455-2014)
Multimodel estimates of atmospheric lifetimes of long‐lived ozone‐depleting substances: Present and future
Journal of Geophysical Research
(2014)
119
2555
(doi: 10.1002/2013jd021097)
Heterogeneous reaction of N2O5 with airborne TiO2 particles and its implication for stratospheric particle injection
Atmospheric Chemistry and Physics Discussions
(2014)
14
4421
(doi: 10.5194/acpd-14-4421-2014)
Estimates of tropical bromoform emissions using an inversion method
Atmospheric Chemistry and Physics
(2014)
14
979
(doi: 10.5194/acp-14-979-2014)
Influence of future climate and cropland expansion on isoprene emissions and tropospheric ozone
Atmospheric Chemistry and Physics
(2014)
14
1011
(doi: 10.5194/acp-14-1011-2014)
Bromocarbons in the tropical coastal and open ocean atmosphere during the Prime Expedition Scientific Cruise 2009 (PESC 09)
Atmospheric Chemistry and Physics Discussions
(2014)
14
953
(doi: 10.5194/acpd-14-953-2014)
Evaluation of the new UKCA climate-composition model - Part 2: The Troposphere
Geoscientific Model Development
(2014)
7
41
(doi: 10.5194/gmd-7-41-2014)
Heterogeneous reaction of N2O5 with airborne TiO2 particles and its implication for stratospheric particle injection (vol 14, pg 6035, 2014)
ATMOSPHERIC CHEMISTRY AND PHYSICS
(2014)
14
8233
(doi: 10.5194/acp-14-8233-2014)