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123 peer-reviewed articles • 39,003 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1Interactions between atmospheric composition and climate change – progress in understanding and future opportunities from AerChemMIP, PDRMIP, and RFMIP
Geoscientific Model Development, 2024, 17, 2387-2417
3.810Citations (PDF)
2COVID-19 lockdown emission reductions have the potential to explain over half of the coincident increase in global atmospheric methane
Atmospheric Chemistry and Physics, 2022, 22, 14243-14252
4.642Citations (PDF)
3Climate benefit of a future hydrogen economy6.8138Citations (PDF)
4Effective radiative forcing from emissions of reactive gases and aerosols – a multi-model comparison4.6129Citations (PDF)
5Regional variation in the effectiveness of methane-based and land-based climate mitigation options
Earth System Dynamics, 2021, 12, 513-544
5.99Citations (PDF)
6Energy Budget Constraints on the Time History of Aerosol Forcing and Climate Sensitivity3.051Citations (PDF)
7Changes in extreme events over Asia for present and future climate conditions based on a modelling analysis of atmospheric circulation anomalies2.33Citations (PDF)
8Climate-driven chemistry and aerosol feedbacks in CMIP6 Earth system models4.694Citations (PDF)
9Predicting global patterns of long-term climate change from short-term simulations using machine learning6.581Citations (PDF)
10Stable climate metrics for emissions of short and long-lived species—combining steps and pulses4.983Citations (PDF)
11Trends in global tropospheric hydroxyl radical and methane lifetime since 1850 from AerChemMIP
Atmospheric Chemistry and Physics, 2020, 20, 12905-12920
4.6113Citations (PDF)
12Effective radiative forcing and adjustments in CMIP6 models4.6261Citations (PDF)
13Climate and air quality impacts due to mitigation of non-methane near-term climate forcers4.651Citations (PDF)
14Radiative Forcing of Climate: The Historical Evolution of the Radiative Forcing Concept, the Forcing Agents and their Quantification, and Applications
Meteorological Monographs, 2019, 59, 14.1-14.101
5.284Citations (PDF)
15Asserting the climate benefits of the coal-to-gas shift across temporal and spatial scales
Nature Climate Change, 2019, 9, 389-396
17.6116Citations (PDF)
16Increased importance of methane reduction for a 1.5 degree target4.9101Citations (PDF)
17Peroxy acetyl nitrate (PAN) measurements at northern midlatitude mountain sites in April: a constraint on continental source–receptor relationships
Atmospheric Chemistry and Physics, 2018, 18, 15345-15361
4.65Citations (PDF)
18Land-use emissions play a critical role in land-based mitigation for Paris climate targets13.7286Citations (PDF)
19Carbon budgets for 1.5 and 2 °C targets lowered by natural wetland and permafrost feedbacks
Nature Geoscience, 2018, 11, 568-573
11.3106Citations (PDF)
20The social cost of methane: theory and applications
Faraday Discussions, 2017, 200, 429-451
3.070Citations (PDF)
21Future global mortality from changes in air pollution attributable to climate change
Nature Climate Change, 2017, 7, 647-651
17.6233Citations (PDF)
22Sensitivity of midnineteenth century tropospheric ozone to atmospheric chemistry‐vegetation interactions3.021Citations (PDF)
23Regional temperature change potentials for short-lived climate forcers based on radiative forcing from multiple models
Atmospheric Chemistry and Physics, 2017, 17, 10795-10809
4.630Citations (PDF)
24Multi-model simulations of aerosol and ozone radiative forcing due to anthropogenic emission changes during the period 1990–20154.6117Citations (PDF)
25The dynamical impact of Rossby wave breaking upon UK PM 10 concentration4.615Citations (PDF)
26Accounting for the climate–carbon feedback in emission metrics
Earth System Dynamics, 2017, 8, 235-253
5.9100Citations (PDF)
27AerChemMIP: quantifying the effects of chemistry and aerosols in CMIP63.8275Citations (PDF)
28Flexible parameter-sparse global temperature time profiles that stabilise at 1.5 and 2.0  °C
Earth System Dynamics, 2017, 8, 617-626
5.914Citations (PDF)
29The effect of future ambient air pollution on human premature mortality to 2100 using output from the ACCMIP model ensemble4.6121Citations (PDF)
30Contrasting fast precipitation responses to tropospheric and stratospheric ozone forcing
Geophysical Research Letters, 2016, 43, 1263-1271
4.118Citations (PDF)
31Regional and global temperature response to anthropogenic SO 2 emissions from China in three climate models4.651Citations (PDF)
32Radiative forcing and climate metrics for ozone precursor emissions: the impact of multi-model averaging4.65Citations (PDF)
33Current model capabilities for simulating black carbon and sulfate concentrations in the Arctic atmosphere: a multi-model evaluation using a comprehensive measurement data set4.6159Citations (PDF)
34Evaluating the climate and air quality impacts of short-lived pollutants
Atmospheric Chemistry and Physics, 2015, 15, 10529-10566
4.6415Citations (PDF)
35Climate responses to anthropogenic emissions of short-lived climate pollutants4.674Citations (PDF)
36Metrics for linking emissions of gases and aerosols to global precipitation changes
Earth System Dynamics, 2015, 6, 525-540
5.925Citations (PDF)
37Megacities and climate change – A brief overview
Environmental Pollution, 2015, 203, 235-242
7.776Citations (PDF)
38Evaluation of the new UKCA climate-composition model – Part 2: The Troposphere3.8214Citations (PDF)
39Application of chemical transport model CMAQ to policy decisions regarding PM2.5 in the UK
Atmospheric Environment, 2014, 82, 410-417
3.862Citations (PDF)
40Global premature mortality due to anthropogenic outdoor air pollution and the contribution of past climate change4.9427Citations (PDF)
41Impacts of climate change on surface ozone and intercontinental ozone pollution: A multi‐model study3.0184Citations (PDF)
42The Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP): overview and description of models, simulations and climate diagnostics3.8422Citations (PDF)
43Preindustrial to present-day changes in tropospheric hydroxyl radical and methane lifetime from the Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP)4.6341Citations (PDF)
44A 4-D climatology (1979–2009) of the monthly tropospheric aerosol optical depth distribution over the Mediterranean region from a comparative evaluation and blending of remote sensing and model products2.9141Citations (PDF)
45Pre-industrial to end 21st century projections of tropospheric ozone from the Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP)4.6643Citations (PDF)
46Evaluation of preindustrial to present-day black carbon and its albedo forcing from Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP)4.6130Citations (PDF)
47Corrigendum to "Evaluation of preindustrial to present-day black carbon and its albedo forcing from Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP)" published in Atmos. Chem. Phys., 13, 2607–2634, 20134.63Citations (PDF)
48Tropospheric ozone changes, radiative forcing and attribution to emissions in the Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP)4.6424Citations (PDF)
49Corrigendum to "Pre-industrial to end 21st century projections of tropospheric ozone from the Atmospheric Chemistry and Climate Model Intercomparison Project (ACCMIP)" published in Atmos. Chem. Phys., 13, 2063–2090, 20134.620Citations (PDF)
50Corrigendum to "Net radiative forcing and air quality responses to regional CO emission reductions" published in Atmos. Chem. Phys., 13, 5381–5399, 20134.61Citations (PDF)
51Global and regional temperature-change potentials for near-term climate forcers4.6136Citations (PDF)
52Analysis of present day and future OH and methane lifetime in the ACCMIP simulations4.6295Citations (PDF)
53Radiative forcing in the ACCMIP historical and future climate simulations4.6420Citations (PDF)
54Evaluation of ACCMIP outgoing longwave radiation from tropospheric ozone using TES satellite observations4.664Citations (PDF)
55Net radiative forcing and air quality responses to regional CO emission reductions4.614Citations (PDF)
56Long‐term ozone changes and associated climate impacts in CMIP5 simulations3.0264Citations (PDF)
57Modelling future changes in surface ozone: a parameterized approach4.6163Citations (PDF)
58Global radiative forcing and megacities
Urban Climate, 2012, 1, 4-19
6.523Citations (PDF)
59The influence of ozone precursor emissions from four world regions on tropospheric composition and radiative climate forcing3.5110Citations (PDF)
60Sensitivity of biogenic isoprene emissions to past, present, and future environmental conditions and implications for atmospheric chemistry3.585Citations (PDF)
61The Effects of Tropospheric Ozone on Net Primary Productivity and Implications for Climate Change24.4792Citations (PDF)
62Sensitivity of an Earth system climate model to idealized radiative forcing4.128Citations (PDF)
63Global air quality and climate
Chemical Society Reviews, 2012, 41, 6663
37.7497Citations (PDF)
64The HadGEM2 family of Met Office Unified Model climate configurations3.8832Citations (PDF)
65Development and evaluation of an Earth-System model – HadGEM23.81,255Citations (PDF)
66Transport impacts on atmosphere and climate: Shipping
Atmospheric Environment, 2010, 44, 4735-4771
3.8850Citations (PDF)
67An assessment of the impact of climate change on air quality at two UK sites
Atmospheric Environment, 2010, 44, 1877-1886
3.826Citations (PDF)
68How vegetation impacts affect climate metrics for ozone precursors3.577Citations (PDF)
69Possible role of wetlands, permafrost, and methane hydrates in the methane cycle under future climate change: A review34.2216Citations (PDF)
70The indirect global warming potential and global temperature change potential due to methane oxidation4.9255Citations (PDF)
71Atmospheric composition change: Climate–Chemistry interactions
Atmospheric Environment, 2009, 43, 5138-5192
3.8266Citations (PDF)
72Interactions between tropospheric chemistry and climate model temperature and humidity biases4.123Citations (PDF)
73Multimodel estimates of intercontinental source‐receptor relationships for ozone pollution3.5474Citations (PDF)
74Impact of increasing ship emissions on air quality and deposition over Europe by 20301.322Citations (PDF)
75Radiative forcing from surface NO x emissions: spatial and seasonal variations
Climatic Change, 2008, 88, 385-401
3.741Citations (PDF)
76How is surface ozone in Europe linked to Asian and North American NOx emissions?
Atmospheric Environment, 2008, 42, 7412-7422
3.846Citations (PDF)
77The Met Office Hadley Centre climate modelling capability: the competing requirements for improved resolution, complexity and dealing with uncertainty2.528Citations (PDF)
78Multi-model simulations of the impact of international shipping on Atmospheric Chemistry and Climate in 2000 and 20304.6137Citations (PDF)
79Indirect radiative forcing of climate change through ozone effects on the land-carbon sink
Nature, 2007, 448, 791-794
37.9964Citations (PDF)
80Stomatal conductance changes due to increasing carbon dioxide levels: Projected impact on surface ozone levels1.433Citations (PDF)
81Multimodel ensemble simulations of present-day and near-future tropospheric ozone3.5817Citations (PDF)
82Tropospheric ozone and El Niño–Southern Oscillation: Influence of atmospheric dynamics, biomass burning emissions, and future climate change3.572Citations (PDF)
83Multimodel simulations of carbon monoxide: Comparison with observations and projected near-future changes3.5271Citations (PDF)
84The Global Atmospheric Environment for the Next Generation11.1346Citations (PDF)
85Radiative forcing since preindustrial times due to ozone change in the troposphere and the lower stratosphere4.6142Citations (PDF)
86External influences on Europe's air quality: Baseline methane, carbon monoxide and ozone from 1990 to 2030 at Mace Head, Ireland
Atmospheric Environment, 2006, 40, 844-855
3.843Citations (PDF)
87Present and future acid deposition to ecosystems: The effect of climate change
Atmospheric Environment, 2006, 40, 1275-1283
3.862Citations (PDF)
88Global environmental impacts of the hydrogen economy0.082Citations (PDF)
89Influence of convective transport on tropospheric ozone and its precursors in a chemistry-climate model4.663Citations (PDF)
90The Contribution from Shipping Emissions to Air Quality and Acid Deposition in Europe
Ambio, 2005, 34, 54-59
3.945Citations (PDF)
91Impacts of climate change and variability on tropospheric ozone and its precursors
Faraday Discussions, 2005, 130, 41
3.085Citations (PDF)
92Assessing future nitrogen deposition and carbon cycle feedback using a multimodel approach: Analysis of nitrogen deposition3.5294Citations (PDF)
93The Contribution from Shipping Emissions to Air Quality and Acid Deposition in Europe
Ambio, 2005, 34, 54
3.916Citations (PDF)
94Intercontinental transport and the origins of the ozone observed at surface sites in Europe
Atmospheric Environment, 2004, 38, 1891-1901
3.8147Citations (PDF)
95Radiative forcing from aircraft NOxemissions: Mechanisms and seasonal dependence3.5120Citations (PDF)
96Title is missing!1.6104Citations (PDF)
97Title is missing!1.671Citations (PDF)
98Stratosphere-troposphere exchange: A model and method intercomparison3.557Citations (PDF)
99Stratosphere-troposphere exchange: A review, and what we have learned from STACCATO3.5498Citations (PDF)
100Stratosphere-to-troposphere transport: A model and method evaluation3.567Citations (PDF)
101Effect of stratosphere-troposphere exchange on the future tropospheric ozone trend3.5169Citations (PDF)
102Effect of Climate Change on Isoprene Emissions and Surface Ozone Levels4.1198Citations (PDF)
103Intercomparison of tropospheric ozone models: Ozone transport in a complex tropopause folding event3.556Citations (PDF)
104Atmospheric impact of the 1783–1784 Laki eruption: Part I Chemistry modelling4.677Citations (PDF)
105Interannual variability in methane growth rate simulated with a coupled Ocean-Atmosphere-Chemistry model
Geophysical Research Letters, 2002, 29, 9-1-9-4
4.117Citations (PDF)
106Title is missing!
Climatic Change, 2002, 52, 453-479
3.7151Citations (PDF)
107A comparison of two schemes for the convective transport of chemical species in a Lagrangian global chemistry model2.838Citations (PDF)
108Role of climate feedback on methane and ozone studied with a Coupled Ocean-Atmosphere-Chemistry Model
Geophysical Research Letters, 2001, 28, 1723-1726
4.1100Citations (PDF)
109Title is missing!
Climatic Change, 2001, 49, 463-487
3.7141Citations (PDF)
110The European regional ozone distribution and its links with the global scale for the years 1992 and 2015
Atmospheric Environment, 2000, 34, 255-267
3.876Citations (PDF)
111Future estimates of tropospheric ozone radiative forcing and methane turnover - The impact of climate change
Geophysical Research Letters, 2000, 27, 2073-2076
4.189Citations (PDF)
112The impact of human activities on the photochemical production and destruction of tropospheric ozone2.810Citations (PDF)
113Role of convection in determining the budget of odd hydrogen in the upper troposphere
Journal of Geophysical Research, 1999, 104, 26927-26941
3.575Citations (PDF)
114Relative roles of climate and emissions changes on future tropospheric oxidant concentrations
Journal of Geophysical Research, 1999, 104, 18631-18645
3.5131Citations (PDF)
115Intercomparison and evaluation of atmospheric transport in a Lagrangian model (STOCHEM), and an Eulerian model (UM), using222Rn as a short-lived tracer2.829Citations (PDF)
116Evolution of tropospheric ozone radiative forcing
Geophysical Research Letters, 1998, 25, 3819-3822
4.188Citations (PDF)
117The impact of aircraft nitrogen oxide emissions on tropospheric ozone studied with a 3D lagrangian model including fully diurnal chemistry
Atmospheric Environment, 1997, 31, 1837-1850
3.846Citations (PDF)
118Title is missing!1.6238Citations (PDF)
119The NCEP/NCAR 40-Year Reanalysis Project0.026,430Citations (PDF)
120Ozone and carbon monoxide measurements at a remote maritime location, mace head, Ireland, from 1990 to 1992
Atmospheric Environment, 1994, 28, 2623-2637
3.868Citations (PDF)
121Significant climate benefits from near-term climate forcer mitigation in spite of aerosol reductions4.920Citations (PDF)
122The Net Effective Radiative Forcing From Ozone‐Depleting Substances and Its Uncertainty4.10Citations (PDF)
123Methane Emission Reductions Slow Stratospheric Ozone Recovery by Amplifying the Potency of Ozone Depleting Substances4.10Citations (PDF)