A continued role of short-lived climate forcers under the Shared Socioeconomic Pathways
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T. Berntsen | B. Samset | M. Lund | Z. Klimont | B. Aamaas | C. W. Stjern
[1] Y. Kondo,et al. Rapid reduction in black carbon emissions from China: evidence from 2009–2019 observations on Fukue Island, Japan , 2020, Atmospheric Chemistry and Physics.
[2] Christopher J. Smith,et al. Past warming trend constrains future warming in CMIP6 models , 2020, Science Advances.
[3] Z. Klimont,et al. Technical potentials and costs for reducing global anthropogenic methane emissions in the 2050 timeframe –results from the GAINS model , 2020, Environmental Research Communications.
[4] Steven J. Smith,et al. The generation of gridded emissions data for CMIP6 , 2020, Geoscientific Model Development.
[5] P. Good,et al. Climate and air quality impacts due to mitigation of non-methane near-term climate forcers , 2020, Atmospheric Chemistry and Physics.
[6] R. Weiss,et al. Preindustrial 14CH4 indicates greater anthropogenic fossil CH4 emissions , 2020, Nature.
[7] E. Hawkins,et al. Accelerated increases in global and Asian summer monsoon precipitation from future aerosol reductions , 2020, Atmospheric Chemistry and Physics.
[8] Jérôme Hilaire,et al. Coal and carbonization in sub-Saharan Africa , 2019, Nature Climate Change.
[9] Christopher J. Smith,et al. Latest climate models confirm need for urgent mitigation , 2019, Nature Climate Change.
[10] Christopher J. Smith,et al. Climate and air-quality benefits of a realistic phase-out of fossil fuels , 2019, Nature.
[11] T. Berntsen,et al. The regional temperature implications of strong air quality measures , 2019, Atmospheric Chemistry and Physics.
[12] Jérôme Hilaire,et al. Taking some heat off the NDCs? The limited potential of additional short-lived climate forcers’ mitigation , 2019, Climatic Change.
[13] B. Aamaas,et al. Climate impact of Finnish air pollutants and greenhouse gases using multiple emission metrics , 2019, Atmospheric Chemistry and Physics.
[14] Z. Nahorski,et al. Quantifying greenhouse gas emissions , 2019, Mitigation and Adaptation Strategies for Global Change.
[15] T. Takemura,et al. Weak global warming mitigation by reducing black carbon emissions , 2019, Scientific Reports.
[16] R. Skeie,et al. Concentrations and radiative forcing of anthropogenic aerosols from 1750 to 2014 simulated with the Oslo CTM3 and CEDS emission inventory , 2018, Geoscientific Model Development.
[17] K. Calvin,et al. Global emissions pathways under different socioeconomic scenarios for use in CMIP6: a dataset of harmonized emissions trajectories through the end of the century , 2018, Geoscientific Model Development.
[18] Jens Borken-Kleefeld,et al. Outlook for clean air in the context of sustainable development goals , 2018, Global Environmental Change.
[19] Meng Li,et al. Trends in China's anthropogenic emissions since 2010 as the consequence of clean air actions , 2018, Atmospheric Chemistry and Physics.
[20] K. Caldeira,et al. Divergent global-scale temperature effects from identical aerosols emitted in different regions , 2018, Nature Communications.
[21] Andy Reisinger,et al. How much do direct livestock emissions actually contribute to global warming? , 2018, Global change biology.
[22] H. Matthews,et al. The impact of aerosol emissions on the 1.5 °C pathways , 2018 .
[23] Hadi Dowlatabadi,et al. Why do climate change scenarios return to coal , 2017 .
[24] D. Shindell,et al. Short-lived climate pollutant mitigation and the Sustainable Development Goals , 2017, Nature Climate Change.
[25] Veerabhadran Ramanathan,et al. Well below 2 °C: Mitigation strategies for avoiding dangerous to catastrophic climate changes , 2017, Proceedings of the National Academy of Sciences.
[26] Lisa Bock,et al. Emission metrics for quantifying regional climate impacts of aviation , 2017 .
[27] Meng Li,et al. Historical (1750–2014) anthropogenic emissions of reactive gases and aerosols from the Community Emissions Data System (CEDS) , 2017 .
[28] K. Calvin,et al. Future air pollution in the Shared Socio-economic Pathways , 2017 .
[29] J. Eom,et al. The Shared Socioeconomic Pathways and their energy, land use, and greenhouse gas emissions implications: An overview , 2017 .
[30] T. Berntsen,et al. Perspective has a strong effect on the calculation of historical contributions to global warming , 2017 .
[31] G. Myhre,et al. Radiative forcing of carbon dioxide, methane, and nitrous oxide: A significant revision of the methane radiative forcing , 2016 .
[32] E. Schneidemesser,et al. Sustainable policy—key considerations for air quality and climate change , 2016 .
[33] P. Ciais,et al. Accounting for the climate–carbon feedback in emission metrics , 2016 .
[34] Jens Borken-Kleefeld,et al. Global anthropogenic emissions of particulate matter including black carbon , 2016 .
[35] G. Janssens‑Maenhout,et al. Forty years of improvements in European air quality: regional policy-industry interactions with global impacts , 2016 .
[36] D. Victor,et al. Response of Arctic temperature to changes in emissions of short-lived climate forcers , 2015 .
[37] G. Janssens‑Maenhout,et al. “ HTAP _ v 2 : a mosaic of regional and global emission gridmaps for 2008 and 2010 to study hemispheric transport of air pollution , 2015 .
[38] J. Lelieveld,et al. The contribution of outdoor air pollution sources to premature mortality on a global scale , 2015, Nature.
[39] Keywan Riahi,et al. Impact of short-lived non-CO2 mitigation on carbon budgets for stabilizing global warming , 2015 .
[40] T. Berntsen,et al. Evaluating the climate and air quality impacts of short-lived pollutants , 2015 .
[41] T. Berntsen,et al. Climate impacts of short-lived climate forcers versus CO2 from biodiesel: a case of the EU on-road sector. , 2014, Environmental science & technology.
[42] T. Berntsen,et al. Global and regional climate impacts of black carbon and co-emitted species from the on-road diesel sector , 2014 .
[43] J. Rogelj,et al. Disentangling the effects of CO2 and short-lived climate forcer mitigation , 2014, Proceedings of the National Academy of Sciences.
[44] R. Pierrehumbert. Short-Lived Climate Pollution , 2014 .
[45] D. Shindell,et al. Anthropogenic and Natural Radiative Forcing , 2014 .
[46] J. Shoemaker,et al. What Role for Short-Lived Climate Pollutants in Mitigation Policy? , 2013, Science.
[47] M. Allen,et al. The role of short-lived climate pollutants in meeting temperature goals , 2013 .
[48] Markus Amann,et al. Regional and Global Emissions of Air Pollutants: Recent Trends and Future Scenarios , 2013 .
[49] Andrew H. Mizrahi,et al. Near-term climate mitigation by short-lived forcers , 2013, Proceedings of the National Academy of Sciences of the United States of America.
[50] B. DeAngelo,et al. Bounding the role of black carbon in the climate system: A scientific assessment , 2013 .
[51] G. Peters,et al. Simple emission metrics for climate impacts , 2013 .
[52] D. Saint‐Martin,et al. Transient Climate Response in a Two-Layer Energy-Balance Model. Part I: Analytical Solution and Parameter Calibration Using CMIP5 AOGCM Experiments , 2013 .
[53] Keywan Riahi,et al. A new scenario framework for climate change research: the concept of shared socioeconomic pathways , 2013, Climatic Change.
[54] T. Berntsen,et al. The chemical transport model Oslo CTM3 , 2012 .
[55] Dean N. Williams,et al. The Earth System Grid Federation: An open infrastructure for access to distributed geospatial data , 2012, 2012 IEEE 8th International Conference on E-Science.
[56] William J. Collins,et al. Global and regional temperature-change potentials for near-term climate forcers , 2012 .
[57] Ian G. Enting,et al. Carbon dioxide and climate impulse response functions for the computation of greenhouse gas metrics:a multi-model analysis , 2012 .
[58] M. Chin,et al. Radiative forcing of the direct aerosol effect from AeroCom Phase II simulations , 2012 .
[59] Nicholas Z. Muller,et al. Global Air Quality and Health Co-benefits of Mitigating Near-Term Climate Change through Methane and Black Carbon Emission Controls , 2012, Environmental health perspectives.
[60] Kaarle Kupiainen,et al. Simultaneously Mitigating Near-Term Climate Change and Improving Human Health and Food Security , 2012, Science.
[61] B. Samset,et al. Vertical dependence of black carbon, sulphate and biomass burning aerosol radiative forcing , 2011 .
[62] J. Fuglestvedt,et al. Contributions of individual countries’ emissions to climate change and their uncertainty , 2011 .
[63] David S. Lee,et al. Transport impacts on atmosphere and climate: Metrics , 2010 .
[64] S. Bauer,et al. Attribution of climate forcing to economic sectors , 2010, Proceedings of the National Academy of Sciences.
[65] Robert Sausen,et al. Shipping emissions: from cooling to warming of climate-and reducing impacts on health. , 2009, Environmental science & technology.
[66] Nadine Unger,et al. Clean the Air, Heat the Planet? , 2009, Science.
[67] T. Berntsen,et al. Global temperature responses to current emissions from the transport sectors , 2008, Proceedings of the National Academy of Sciences.
[68] V. Ramanathan,et al. Global and regional climate changes due to black carbon , 2008 .
[69] Olivier Boucher,et al. Climate trade-off between black carbon and carbon dioxide emissions , 2008 .
[70] J. Fuglestvedt,et al. Alternatives to the Global Warming Potential for Comparing Climate Impacts of Emissions of Greenhouse Gases , 2005 .
[71] Ken Caldeira,et al. Insensitivity of global warming potentials to carbon dioxide emission scenarios , 1993, Nature.