Jacobson pursued "better understanding air pollution and global warming problems and developing large-scale clean, renewable energy solutions to them".[2] He has developed computer models[3] to study the effects of fossil fuels, biofuels, and biomass burning on air pollution, weather, and climate. With these models, Jacobson examined the impacts of anthropogenic particles (black carbon and brown carbon) on health and climate. He presented such particles as the second-leading cause of global warming after carbon dioxide.[4] Due to their strong health impacts and their short time in the air, he has also hypothesized that reducing their emissions may
improve people's health and rapidly slow down global warming.[5]
In a 2009 Scientific American paper, Jacobson and Mark Delucchi proposed that the world should move to 100% clean, renewable energy, namely wind, water, and solar power, across all energy sectors.[6] He discussed and promoted[7][8][9] the conversion of worldwide energy infrastructure to "100% wind, water, and sunlight (WWS) for all purposes"[10] in many interviews[11] Jacobson's 2015 study on transitioning the 50 states to WWS was cited as the scientific basis in House Resolution 540 (2015)[12] and in the 2015 New York Senate Bill S5527 on renewable energy[13] The Green New Deal appears compatible with Jacobson's scholarship.[14]
Jacobson's clean energy solutions exclude nuclear power, carbon capture, and bioenergy,[15] prompting a pushback by proponents of these technologies in the form of peer-reviewed letters and journal papers[16][17] He has published peer-reviewed responses to these critics.[18][19] A controversy developed in September 2017 when Jacobson sued the journal and one author of a critique for $10M, for defamation.[20] He voluntarily dismissed his lawsuit without prejudice five months later,[21][22][23][24] but was ordered to reimburse defendants more than $500,000 in legal fees.[25][26] In June 2022, the California Labor Commissioner ordered Stanford University to pay Jacobson's own legal fees and reserved judgment on the remaining fees Jacobson paid.[27] Stanford appealed.[25]
Jacobson has built his own net-zero home to run on renewable energy.[28] He was also an expert witness in Held v. Montana, the first climate trial in U.S. history.[29]
Jacobson has published research on the role of black carbon and other aerosol chemical components on global and regional climates.[30][31]
Jacobson advocates a speedy transition to 100% renewable energy in order to limit climate change, air pollution damage, and energy security issues. Jacobson co-founded the non-profit Solutions Project in 2011 along with Marco Krapels, Mark Ruffalo, and Josh Fox. The Solutions Project was started to combine science, business, and culture in an effort to educate the public and policymakers about the ability U.S. states and communities to switch to a "100% renewable world".
Jacobson, as a PhD student at UCLA under Richard P. Turco, began computer model development in 1990 with the development of algorithms for what is now called GATOR-GCMOM (Gas, Aerosol, Transport, Radiation, General Circulation, Mesoscale, and Ocean Model).[3] This model simulates air pollution, weather, and climate from the local to global scale. Zhang (2008, pp. 2901, 2902) calls Jacobson's model "the first fully-coupled online model in the history that accounts for all major feedbacks among major atmospheric processes based on first principles."[32]
One of the most important fields of research that Jacobson has added to, with the aid of GATOR-GCMOM, is re-defining the range of values on exactly how much diffuse tropospheric black carbon from fossil fuel, biofuel, and biomass burning affects the climate. Unlike greenhouse gases, black carbon absorbs solar radiation. It then converts the solar energy to heat, which is re-emitted to the atmosphere. Without such absorption, much of the sunlight would potentially reflect back out to space since it would have struck a more reflective surface. Therefore, as a whole, soot affects the planets albedo, a unit of reflectance. On the other hand, greenhouse gases warm the atmosphere by trapping thermal-infrared heat radiation that is emitted by the surface of the Earth.[50][52]
Jacobson found that, as soot particles in the air age, they grow larger due to condensation by gases and collision/coalescence with other particles. He further found that when a soot particle obtained such a coating, more sunlight enters the particles, bounces around, and eventually gets absorbed by the black carbon. On a global scale, this may result in twice the heating by black carbon as uncoated particles. Upon detailed calculations, he concluded that black carbon may be the second-leading cause of global warming in terms of radiative forcing.[53] Jacobson further found that soot from diesel engines, coal-fired power plants and burning wood is a "major cause of the rapid melting of the Arctic's sea ice.
Jacobson's refinement to the warming impacts of soot and his conclusion that black carbon may be the second leading cause of global warming in terms of radiative forcing was affirmed in the comprehensive review of Bond et al. (2013).[54] For this body of work, he received the Henry G. Houghton Award[30] from the American Meteorological Society in 2005 and the American Geophysical Union Ascent Award in 2013.
Jacobson has also independently modeled and corroborated the work of World Health Organization researchers, who likewise estimate that soot/particulate matter produced from the burning of fossil fuels and biofuels may cause over 1.5 million premature deaths each year from diseases such as respiratory illness, heart disease and asthma. These deaths occur mostly in the developing world where wood, animal dung, kerosene, and coal are used for cooking.[50]
Because of the short atmospheric lifetime of black carbon, in 2002 Jacobson concluded that controlling soot is the fastest way to begin to control global warming and that it will likewise improve human health.[55] However, he cautioned that controlling carbon dioxide, the leading cause of global warming, was imperative for stopping warming.
Jacobson has published papers about transitioning to 100% renewable energy systems, including the grid integration of renewable energy. He has concluded that wind, water, and solar (WWS) power can be scaled up in cost-effective ways to fulfill world energy demands in all energy sectors, In 2009 Jacobson and Mark A. Delucchi published "A Plan to Power 100 Percent of the Planet with Renewables" in Scientific American.[6] The article addressed several issues related to transitioning to 100% WWS, such as the energy required in a 100% electric world, the worldwide spatial footprint of wind farms, the availability of scarce materials needed to manufacture new systems and the ability to produce reliable energy on demand. Jacobson has updated and expanded this 2009 paper as the years progress, including a two-part article in the journal Energy Policy in 2010.[56] Jacobson and his colleague estimated that 3.8 million wind turbines of 5-Megawatt (MW) size, 49,000 300-MW concentrated solar power plants, 40,000 300-MW solar PV power plants, 1.7 billion 3-kW rooftop PV systems, 5350 100-MW geothermal power plants, and some 270 new 1300-MW hydroelectric power plants would be needed. All of which would require approximately 1% of the world's land to be achieved.
Jacobson and his colleagues then published papers on transitioning three states to 100% renewable/WWS energy by 2050.[57][58][59] In 2015, Jacobson was the lead author of two peer reviewed papers, one of which examined the feasibility of transitioning each of the 50 United States to a 100% energy system, powered exclusively by wind, water and sunlight (WWS), and the other that provided one proposed method to solve the grid reliability problem with high shares of intermittent sources.[60] In 2016 the editorial board of PNAS selected the grid integration study of Jacobson and his co-workers as best paper in the category "Applied Biological, Agricultural, and Environmental Sciences" and awarded him a Cozzarelli Prize.[61]
Jacobson has also published papers to transition 139[62] and 145 countries[63][64] and cities and 74 metropolitan areas[65] to 100% WWS renewable energy for all purposes. For his work on solving large-scale air pollution and climate problems, Jacobson was awarded the Judi Friedman Lifetime Achievement award in 2018.[66]
Jacobson's 100% renewable world approach is supported by publications among at least 17 international research groups that find 100% renewables possible at low cost throughout the world. It is also supported by the Global 100RE Strategy Group, a coalition of 47 scientists supporting 100% renewable energy to solve the climate problem. His work is also consistent with results from a study out of the U.S. National Renewable Energy Laboratory (NREL), which found that a 100% clean, renewable U.S. electricity grid with no combustion turbines might cost ~4.8 ¢/kWh to keep the grid stable. This is less than the cost of electricity from a new natural gas plant. His work is further supported by a 2016 publication by Mark Cooper, who has previously evaluated the economics of nuclear energy at the Vermont Law School,[68] In 2016 Cooper published,[69] a comparison of the 100% WWS roadmaps of Jacobson with deep decarbonization proposals that included nuclear power and fossil fuels with carbon capture. Cooper concluded that the 100% WWS pathway was the least cost and “Neither fossil fuels with CCS or nuclear power enters the least-cost, low-carbon portfolio.” Earlier publications, from 2011 to 2015, that analyzed, with different methodologies, various strategies to get to a global zero or low carbon economy, by circa 2050, reported that a renewables-alone approach, would be "orders of magnitude" more expensive and more difficult to achieve than other energy paths that have been assessed.[70][71][72][73][74] The more recent studies, including the NREL study, dispute these claims.
Jacobson argues that if the United States wants to reduce global warming, air pollution and energy instability, it should invest only in the best energy options, and that nuclear power is not one of them.[59] To support his claim, Jacobson provided an analysis in 2009 that intended to inform policy makers on which energy sources are best for solving the air pollution, climate, and energy security problems the world faces.[61] He updated this analysis in his 2020 textbook.[75]
That analysis accounted for some emission sources not included in previous analyses, The primary emissions due to nuclear energy are called “opportunity-cost emissions.” These are the emissions due to the long time lag between planning and operation of a nuclear plant (10 to 19 years) versus a wind or solar farm (2 to 5 years), for example. Of the total estimated emissions from nuclear in the 2009 study (68–180.1 g/kWh), 59–106 g/kWh was due to opportunity-cost emissions. Most of the rest (9-70 g/kWh) was due to lifecycle emissions, and a small amount (0-4.1 g/kWh) was due to the risk of carbon emissions associated with the burning of cities resulting from a nuclear war aided by the expansion of nuclear energy to countries previously without them, and the subsequent development of weapons in those countries. Jacobson raised this last assumption during a Ted talk Does the world need nuclear energy? in 2010, with Jacobson heading the debate in the negative.[76]
Like his PhD advisor Richard P. Turco, who notably coined the phrase "nuclear winter", Jacobson has taken a similar approach to calculating the hypothetical effects of nuclear wars on the climate but has further extended this into providing an analysis that intends to inform policy makers on which energy sources to support, as of 2009.[77] Jacobson's analyses suggest that "nuclear power results in up to 25 times more carbon emissions per unit energy than wind energy".
This analysis is controversial. Jacobson arrived at this conclusion of "25 times more carbon emissions than wind, per unit of energy generated" (68–180.1 g/kWh), by specifically expanding on some concepts that are highly contested.[78][77] These include, though are not limited to, the suggestion that emissions associated with civil nuclear energy should, in the upper limit, include the risk of carbon emissions associated with the burning of cities resulting from a nuclear war aided by the expansion of nuclear energy and weapons to countries previously without them. An assumption that Jacobson's debating opponent similarly raised, during the Ted talkDoes the world need nuclear energy? in 2010, with Jacobson heading the debate in the negative.[76] Jacobson assumes, at the high end (180.1 g/kWh), that 4.1 g/kWh are due to some form of nuclear induced burning that will occur once every 30 years. At the low end, 0 g/kWh are due to nuclear induced burning. Responding to a commentary on his work in the Journal Environmental Science and Technology in 2013, James Hansen has characterized Jacobson's analysis on this topic of greenhouse gas emissions, as "lack(ing) credibility" and similarly regards Jacobson's other viewpoint of extra "opportunity-cost" emissions as "dubious". With the foundation of Hansen's incredulity being based on French experience, that decarbonized ~80% of the grid in 15 years, completed 56 reactors in the 15-year period, thus raising the fact that depending on the existence of established regulator certainty & political conditions, nuclear energy facilities have been accelerated through the licensing/planning phase and have therefore rapidly decarbonizated electric grids.[79]
The Intergovernmental Panel on Climate Change(IPCC) regard Yale University's Warner and Heath's methodology, used to determine the Life-cycle greenhouse-gas emissions of energy sources, as the most credible, reporting that the conceivable range of total-life-cycle nuclear power emission figures, are between 4-110 g/kWh, with the specific median value of 12 g/kWh, being deemed the strongest supported and 11 g/kWh for Wind.[80] While Jacobson's limited lifecycle figures, of 9-70 g/kWh, falls within this IPCC range. The IPCC however, does not factor in Jacobson's "opportunity cost" emissions on any energy source. The IPCC has not provided a detailed explanation for not including Jacobson's "opportunity costs". Aside from the time required for planning, financing, permitting, and constructing a power plant, for every energy source that can be analyzed, the time required and therefore Jacobson's "opportunity costs" also depends on political factors, for example hypothetical legal cases that can stall construction and other issues that can arise from site specific NIMBYISM. It is the delay/opportunity cost CO2 of emissions that are the bulk of the difference between Jacobson's overall emissions for nuclear of 68–180.1 g/kWh and the IPCC's lifecycle emissions.
Although nuclear advocates have balked at the idea of including even a small risk of emissions[citation needed], even at the high end, from a potential nuclear war arising from the spread of nuclear energy, the IPCC has stated that,
"Barriers to and risks associated with an increasing use of nuclear energy include operational risks and the associated safety concerns, uranium mining risks, financial and regulatory risks, unresolved waste management issues, nuclear weapons proliferation concerns, and adverse public opinion.”[65]
In 2012, Jacobson coauthored a paper estimating the health effects of the Fukushima nuclear disaster. The paper projected approximately 180 "cancer-related morbidities" to eventually occur in the public.[68][69] Health physicist Kathryn Higley of Oregon State University wrote in 2012, "The methods of the study were solid, and the estimates were reasonable, although there is still uncertainty around them. But given how much cancer already exists in the world, it would be very difficult to prove that anyone’s cancer was caused by the incident at Fukushima Daiichi." Burton Richter, tenured in Stanford with Jacobson, who analyzed the use of the disputed Linear no-Threshold (LNT) model in the paper, similarly stated in his critique, "It is a first rate job and uses sources of radioactivity measurements that have not been used before to get a very good picture of the geographic distribution of radiation, a very good idea". Richter also noted that "I also think there is too much editorializing about accident potential at Diablo Canyon which makes [Jacobson's] paper sound a bit like an anti-nuclear piece instead of the very good analysis that it is," and "It seems clear that considering only the electricity generated by the Fukushima plant, nuclear is much less damaging to health than coal and somewhat better that [sic] gas even after including the accident. If nuclear power had never been deployed in Japan the effects on the public would have [been] much worse."[81][72]
Critiques of 100% renewable papers and court controversy
Jacobson's renewable energy solutions exclude nuclear power, carbon capture, and bioenergy.[15] This has resulted in pushback by some scientists.[16] 21 researchers published a critique in 2017 of Jacobson's "100% Renewable" paper of the United States.[17] Jacobson and his coauthors published a response to the critical paper[18] and also requested the journal and authors to either correct "false factual claims" of modeling error or retract the article. After both declined, Jacobson filed a lawsuit in 2017 against the Proceedings of the National Academy of Sciences and Christopher Clack as the principal author of the paper for defamation.[20] Jacobson’s critics described the lawsuit as an attack on free speech and scientific inquiry,[23] however Jacobson disagreed with this characterization.[22] Jacobson voluntarily dismissed his lawsuit without prejudice in February 2018,[82][23][24] two days after a court hearing on the defendants’ special motion to dismiss pursuant to the D.C. Anti-SLAPP (Strategic Litigation Against Public Participation) Act.[22] Jacobson explained his dismissal as follows: "It became clear… that it is possible that there could be no end to this case for years."[22][23][83] In 2022, Jacobson appealed a trial court order for him to pay $428K in legal fees incurred by defendants in his lawsuit prior to his voluntary dismissal of it.[26] In February 2024, Jacobson lost the appeal and must pay defendants more than $500,000 in legal fees.[25] On June 26, 2022, the California Labor Commissioner ordered Stanford University to pay nearly $70,000 to Jacobson for legal expenses he incurred in the Washington D.C. case and reserved a decision on indemnifying him for his remaining expenses,[26] reasoning that
because the critique in question "tarnished Plaintiff's reputation,"[27] "defending his reputation" was necessary for his job.[25] Stanford, which had declined to intervene on behalf of Jacobson, has appealed that ruling.[26]
Jacobson was also an expert witness on behalf of 16 youth plaintiffs in Held v. Montana, the first climate trial in U.S. history.[29] Jacobson testified that the state could transition to renewable energy.[29] The judge ruled in favor of the youth plaintiffs.[29]
Publications
Books
Jacobson, M. Z., Fundamentals of Atmospheric Modeling. Cambridge University Press, New York, 656 pp., 1999.
Jacobson, M. Z., Atmospheric Pollution: History, Science, and Regulation, Cambridge University Press, New York, 399 pp., 2002.
Jacobson, M. Z., Fundamentals of Atmospheric Modeling, Second Edition, Cambridge University Press, New York, 813 pp., 2005.
Jacobson, M. Z., Air Pollution and Global Warming: History, Science, and Solutions, Cambridge University Press, New York, 2011.
Jacobson, M.Z., 100% Clean, Renewable Energy and Storage for Everything, Cambridge University Press, New York, 427 pp., 2020.
Jacobson, M.Z., No Miracles Needed: How Today's Technology Can Save Our Climate and Clean Our Air, Cambridge University Press, New York, 454 pp., 2023.
Jacobson, Mark Z; Delucchi, Mark A. (2011). "Providing all global energy with wind, water, and solar power, Part I: Technologies, energy resources, quantities and areas of infrastructure, and materials". Energy Policy. 39 (3): 1154–1169. Bibcode:2011EnPol..39.1154J. doi:10.1016/j.enpol.2010.11.040.
Jacobson; et al. (2015). "100% clean and renewable wind, water, and sunlight (WWS) all-sector energy roadmaps for the 50 United States". Energy and Environmental Science. 8 (7): 2093–2117. doi:10.1039/C5EE01283J.
Jacobson, Mark Z.; Delucchi, Mark A.; Cameron, Mary A.; Mathiesen, Brian V. (August 1, 2018). "Matching demand with supply at low cost in 139 countries among 20 world regions with 100% intermittent wind, water, and sunlight (WWS) for all purposes". Renewable Energy. 123: 236–248. Bibcode:2018REne..123..236J. doi:10.1016/j.renene.2018.02.009. S2CID46784278.
Jacobson, Mark Z.; Delucchi, Mark A.; Bazouin, Guillaume; Bauer, Zack A. F.; Heavey, Christa C.; Fisher, Emma; Morris, Sean B.; Piekutowski, Diniana J. Y.; Vencill, Taylor A.; Yeskoo, Tim W. (July 3, 2015). "100% clean and renewable wind, water, and sunlight (WWS) all-sector energy roadmaps for the 50 United States". Energy & Environmental Science. 8 (7): 2093–2117. doi:10.1039/C5EE01283J.
^Jacobson, Mark Z.; Turco, Richard P.; Jensen, Eric J.; Toon, Owen B. (April 1, 1994). "Modeling coagulation among particles of different composition and size". Atmospheric Environment. 28 (7): 1327–1338. Bibcode:1994AtmEn..28.1327J. doi:10.1016/1352-2310(94)90280-1.
^Jacobson, Mark Z. (2002). "Analysis of aerosol interactions with numerical techniques for solving coagulation, nucleation, condensation, dissolution, and reversible chemistry among multiple size distributions". Journal of Geophysical Research: Atmospheres. 107 (D19): AAC 2–1–AAC 2–23. Bibcode:2002JGRD..107.4366J. doi:10.1029/2001JD002044.
^Jacobson, Mark Z.; Seinfeld, John H. (April 1, 2004). "Evolution of nanoparticle size and mixing state near the point of emission". Atmospheric Environment. 38 (13): 1839–1850. Bibcode:2004AtmEn..38.1839J. doi:10.1016/j.atmosenv.2004.01.014.
^Jacobson, M. Z.; Kittelson, D. B.; Watts, W. F. (December 1, 2005). "Enhanced Coagulation Due to Evaporation and Its Effect on Nanoparticle Evolution". Environmental Science & Technology. 39 (24): 9486–9492. Bibcode:2005EnST...39.9486J. doi:10.1021/es0500299. PMID16475326.
^Jacobson, Mark Z.; Tabazadeh, Azadeh; Turco, Richard P. (1996). "Simulating equilibrium within aerosols and nonequilibrium between gases and aerosols". Journal of Geophysical Research: Atmospheres. 101 (D4): 9079–9091. Bibcode:1996JGR...101.9079J. doi:10.1029/96JD00348.
^Jacobson, Mark Z. (January 1, 1997). "Numerical Techniques to Solve Condensational and Dissolutional Growth Equations When Growth is Coupled to Reversible Reactions". Aerosol Science and Technology. 27 (4): 491–498. Bibcode:1997AerST..27..491J. doi:10.1080/02786829708965489.
^Jacobson, Mark Z.; Lu, Rong; Turco, Richard P.; Toon, Owen B. (June 1, 1996). "Development and application of a new air pollution modeling system-part I: Gas-phase simulations". Atmospheric Environment. 30 (12): 1939–1963. Bibcode:1996AtmEn..30.1939J. doi:10.1016/1352-2310(95)00139-5.
^Jacobson, Mark Z. (January 1, 1997). "Development and application of a new air pollution modeling system—II. Aerosol module structure and design". Atmospheric Environment. 31 (2): 131–144. Bibcode:1997AtmEn..31..131J. doi:10.1016/1352-2310(96)00202-6.
^Jacobson, Mark Z.; Kaufman, Yoram J.; Rudich, Yinon (2007). "Examining feedbacks of aerosols to urban climate with a model that treats 3-D clouds with aerosol inclusions". Journal of Geophysical Research: Atmospheres. 112 (D24). Bibcode:2007JGRD..11224205J. doi:10.1029/2007JD008922.
^Jacobson, Mark Z. (2014). "Effects of biomass burning on climate, accounting for heat and moisture fluxes, black and brown carbon, and cloud absorption effects". Journal of Geophysical Research: Atmospheres. 119 (14): 8980–9002. Bibcode:2014JGRD..119.8980J. doi:10.1002/2014JD021861. S2CID1961014.
^Jacobson, Mark Z. (2002). "Control of fossil-fuel particulate black carbon and organic matter, possibly the most effective method of slowing global warming". Journal of Geophysical Research: Atmospheres. 107 (D19): ACH 16–1–ACH 16–22. Bibcode:2002JGRD..107.4410J. doi:10.1029/2001JD001376.
^Jacobson, Mark Z.; Howarth, Robert W.; Delucchi, Mark A.; Scobie, Stan R.; Barth, Jannette M.; Dvorak, Michael J.; Klevze, Megan; Katkhuda, Hind; Miranda, Brian; Chowdhury, Navid A.; Jones, Rick; Plano, Larsen; Ingraffea, Anthony R. (June 1, 2013). "Examining the feasibility of converting New York State's all-purpose energy infrastructure to one using wind, water, and sunlight". Energy Policy. 57: 585–601. Bibcode:2013EnPol..57..585J. doi:10.1016/j.enpol.2013.02.036.
^Jacobson, Mark Z.; Delucchi, Mark A.; Ingraffea, Anthony R.; Howarth, Robert W.; Bazouin, Guillaume; Bridgeland, Brett; Burkart, Karl; Chang, Martin; Chowdhury, Navid; Cook, Roy; Escher, Giulia; Galka, Mike; Han, Liyang; Heavey, Christa; Hernandez, Angelica; Jacobson, Daniel F.; Jacobson, Dionna S.; Miranda, Brian; Novotny, Gavin; Pellat, Marie; Quach, Patrick; Romano, Andrea; Stewart, Daniel; Vogel, Laura; Wang, Sherry; Wang, Hara; Willman, Lindsay; Yeskoo, Tim (August 14, 2014). "A roadmap for repowering California for all purposes with wind, water, and sunlight". Energy. 73: 875–889. Bibcode:2014Ene....73..875J. doi:10.1016/j.energy.2014.06.099.
^ abJacobson, Mark Z.; Delucchi, Mark A.; Bazouin, Guillaume; Dvorak, Michael J.; Arghandeh, Reza; Bauer, Zack A. F.; Cotte, Ariane; de Moor, Gerrit M. T. H.; Goldner, Elissa G.; Heier, Casey; Holmes, Randall T.; Hughes, Shea A.; Jin, Lingzhi; Kapadia, Moiz; Menon, Carishma; Mullendore, Seth A.; Paris, Emily M.; Provost, Graham A.; Romano, Andrea R.; Srivastava, Chandrika; Vencill, Taylor A.; Whitney, Natasha S.; Yeskoo, Tim W. (February 1, 2016). "A 100% wind, water, sunlight (WWS) all-sector energy plan for Washington State". Renewable Energy. 86: 75–88. Bibcode:2016REne...86...75J. doi:10.1016/j.renene.2015.08.003.
^Jacobson, Mark Z.; Delucchi, Mark A.; Cameron, Mary A.; Mathiesen, Brian V. (August 1, 2018). "Matching demand with supply at low cost in 139 countries among 20 world regions with 100% intermittent wind, water, and sunlight (WWS) for all purposes". Renewable Energy. 123: 236–248. Bibcode:2018REne..123..236J. doi:10.1016/j.renene.2018.02.009. S2CID46784278.
^Jacobson, M.Z.; von Krauland, A.-K.; Coughlin, S.J.; Dukas, E.; Nelson, A.J.H.; Palmer, F.C.; Rasmussen, K.R. (June 28, 2022). "Low-cost solutions to global warming, air pollution, and energy insecurity for 145 countries". Energy & Environmental Science. 15 (8): 3343–3359. doi:10.1039/d2ee00722c.
^ abCooper, Mark (2016). "The Economic and Institutional Foundations of the Paris Agreement on Climate Change: The Political Economy of Roadmaps to a Sustainable Electricity Future". doi:10.2139/ssrn.2722880. S2CID155402376. SSRN2722880. {{cite journal}}: Cite journal requires |journal= (help)
^ abJoskow, Paul L (May 1, 2011). "Comparing the Costs of Intermittent and Dispatchable Electricity Generating Technologies". American Economic Review. 101 (3): 238–241. doi:10.1257/aer.101.3.238. hdl:1814/18239.
^Loftus, Peter J.; Cohen, Armond M.; Long, Jane C. S.; Jenkins, Jesse D. (January 2015). "A critical review of global decarbonization scenarios: what do they tell us about feasibility?". WIREs Climate Change. 6 (1): 93–112. Bibcode:2015WIRCC...6...93L. doi:10.1002/wcc.324. S2CID4835733.
^Bruckner et al. 2014: http://www.ipcc.ch/pdf/assessment-report/ar5/wg3/ipcc_wg3_ar5_chapter7.pdf Energy Systems. In: Climate Change 2014: Mitigation of Climate Change. Contribution of Working Group III to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Edenhofer, O., R. Pichs-Madruga, Y. Sokona, E. Farahani, S. Kadner, K. Seyboth, A. Adler, I. Baum, S. Brunner, P. Eickemeier, B. Kriemann, J. Savolainen, S. Schlömer, C. von Stechow, T. Zwickel and J.C. Minx (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA.
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Questa voce sull'argomento centri abitati del Kosovo è solo un abbozzo. Contribuisci a migliorarla secondo le convenzioni di Wikipedia. Podujevëcomune(SQ) Besianë(SR) Podujevo Podujevë – Veduta LocalizzazioneStato// Kosovo[1] DistrettoPristina AmministrazioneSindacoShpejtim Bulliqi (LVV) dal 2021 TerritorioCoordinate42°55′N 21°12′E / 42.916667°N 21.2°E42.916667; 21.2 (Podujevë)Coordinate: 42°55′N 21°12′E / ...
Словенская демократическая партиясловен. Slovenska demokratska strankaСДП / SDS Лидер Янез Янша Основана 16 февраля 1989 Штаб-квартира Улица Трстенякова 8, Любляна, Словения Страна Словения Идеология словенский национализм[1][2], консерватизм[3], правые[4][5][6], нац...
This article's lead section may be too short to adequately summarize the key points. Please consider expanding the lead to provide an accessible overview of all important aspects of the article. (March 2015) 16th episode of the 5th season of Modern Family Spring-a-Ding-FlingModern Family episodeEpisode no.Season 5Episode 16Directed byGail MancusoWritten byBen KarlinProduction code5ARG16Original air dateMarch 5, 2014 (2014-03-05)Guest appearances Aisha Tyler as Wendy Will S...
For other places with the same name, see Germantown, Maryland (disambiguation). Census-designated place in Maryland, United StatesGermantown, MarylandCensus-designated placeGermantown LibraryLocation of Germantown in Montgomery County and MarylandGermantownShow map of MarylandGermantownShow map of the United StatesCoordinates: 39°11′0″N 77°16′0″W / 39.18333°N 77.26667°W / 39.18333; -77.26667CountryUnited StatesStateMarylandCountyMontgomeryArea[1]...
Sitakant Mahapatra ଶୀତାକାନ୍ତ ମହାପାତ୍ରSri Mohapatra pada 2015Lahir17 September 1937 (umur 86)Mahanga, Cuttack, OdishaKebangsaanIndiaPekerjaanpenyair, kritikus sastra, birokratKarya terkenalSabdar Akash (Langit Kata-Kata) (1971)Samudra (1977) Sitakant Mahapatra (lahir 17 September 1937) adalah seorang penyair dan kritikus sastra India terkenal[1] dalam bahasa Odia serta Inggris.[2][3] Ia juga masuk Layanan Administratif India sejak...
Sourcing services or funds from a group Crowd work redirects here. For the performing arts term, see audience participation. This article is written like a personal reflection, personal essay, or argumentative essay that states a Wikipedia editor's personal feelings or presents an original argument about a topic. Please help improve it by rewriting it in an encyclopedic style. (September 2022) (Learn how and when to remove this message) This graphic symbolizes the use of ideas from a wide ran...
American government official Ron NessenNessen in 200415th White House Press SecretaryIn officeSeptember 9, 1974 – January 20, 1977PresidentGerald FordPreceded byJerald terHorstSucceeded byJody Powell Personal detailsBornRonald Harold Nessen (1934-05-25) May 25, 1934 (age 90)Washington, D.C., U.S.Political partyRepublicanEducationShepherd UniversityAmerican University (BA) Ronald Harold Nessen (born May 25, 1934) is an American government official who served as the 15th White H...
Berjaya Air IATA ICAO Kode panggil J8 BVT BERJAYA Didirikan1989 (dengan nama Pacific Air Charter)PenghubungBandar Udara Sultan Abdul Aziz ShahKota fokusBandar Udara Internasional ChangiArmada4Tujuan6Perusahaan indukBerjaya Corporation Grop of CompaniesKantor pusatKuala Lumpur, MalaysiaTokoh utamaTan Sri Dato' Seri Vincent Tan Chee Yioun (CEO)Situs webhttp://www.berjaya-air.com/ Berjaya Air adalah maskapai penerbangan yang berpusat di Shah Alam, Selangor, Malaysia. Maskapai ini mengoperasikan ...
Manichaean text Xuastvanift TranslatorsVasily Radlov (German), Jes Peter Asmussen (English)LanguageUyghur languageGenrePrayer-repentancePublished~1000 (Uyghur)Published in English1965Pages6 Xuastvanift is a manichaean text written in the Uyghur language containing a prayer of repentance.[1] The text is important for understanding the lives of Manichaean communities in the East and confirms many concepts found in other Manichaean, Christian, and Muslim writings. The name Xuastvani...
Thomas LövkvistThomas Lövkvist en 2008InformationsSurnom GotlandNaissance 4 avril 1984 (40 ans)VisbyNationalité suédoiseÉquipes amateurs 2002Ulricehamns CK2003Bianchi ScandinaviaÉquipes professionnelles 2004Fdjeux.com2005-2007La Française des jeux2008-2009Columbia2010-2012Sky2013-2014IAMÉquipes dirigées 2015-2017Tre Berg-BianchiPrincipales victoires 2 championnats Champion de Suède sur route (2006) Champion de Suède du contre-la-montre (2004)modifier - modifier le code - modif...
Norwegian resistance member (1915–2006) Jens Christian HaugeHauge in 1947.Minister of JusticeIn office22 January 1955 – 1 November 1955Prime MinisterEinar GerhardsenPreceded byGustav SjaastadSucceeded byJens HauglandMinister of DefenceIn office5 November 1945 – 5 January 1952Prime MinisterEinar Gerhardsen Oscar TorpPreceded byOscar TorpSucceeded byNils Langhelle Personal detailsBorn(1915-05-15)15 May 1915Ljan, NorwayDied30 October 2006(2006-10-30) (aged 91)Vindere...
1957 studio album by Sonny StittSonny Stitt with the New YorkersStudio album by Sonny StittReleased1957RecordedAugust 30, 1957 Nola's Penthouse Sound, New York CityGenreJazzLabelRoostRLP 2226ProducerTeddy ReigSonny Stitt chronology Personal Appearance(1957) Sonny Stitt with the New Yorkers(1957) Sonny Side Up(1957) Professional ratingsReview scoresSourceRatingAllmusic[1] Sonny Stitt with the New Yorkers is an album by the saxophonist Sonny Stitt, recorded in 1957 and originall...
The Institute of Artistic Culture (‹See Tfd›Russian: Институт Художественной Культуры abbreviated to ИНХУК/INKhUK) was a theoretical and research based Russian artistic organisation founded in March Moscow in 1920 and continuing until 1924.[1] Origins It was established under the authority of the Narkompros and funded through the Department of Fine Arts (IZO). In May 1920 Anatoly Lunacharsky appointed Wassily Kandinsky as its first director.[...