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Comparing energy and material efficiency rebound effects: an exploration of scenarios in the GEM-E3 macroeconomic model 期刊论文
ECOLOGICAL ECONOMICS, 2020, 173
作者:  Skelton, Alexandra C. H.;  Paroussos, Leonidas;  Allwood, Julian M.
收藏  |  浏览/下载:10/0  |  提交时间:2020/08/18
CGE model  Computable general equilibrium  Rebound effect  Jevon'  s Paradox  Material efficiency  Resource efficiency  Circular economy  
Carbon intensity of global crude oil refining and mitigation potential 期刊论文
NATURE CLIMATE CHANGE, 2020, 10 (6) : 526-+
作者:  Jing, Liang;  El-Houjeiri, Hassan M.;  Monfort, Jean-Christophe;  Brandt, Adam R.;  Masnadi, Mohammad S.;  Gordon, Deborah;  Bergerson, Joule A.
收藏  |  浏览/下载:18/0  |  提交时间:2020/06/09
Climate change mitigation potential in sanitation via off-site composting of human waste 期刊论文
NATURE CLIMATE CHANGE, 2020, 10 (6) : 545-+
作者:  McNicol, Gavin;  Jeliazovski, Julie;  Francois, Junior Jules;  Kramer, Sasha;  Ryals, Rebecca
收藏  |  浏览/下载:6/0  |  提交时间:2020/06/09
Sweet spots are in the food system: Structural adjustments to co-control regional pollutants and national GHG emissions in China 期刊论文
ECOLOGICAL ECONOMICS, 2020, 171
作者:  Liu, Li-Jing;  Liang, Qiao-Mei;  Creutzig, Felix;  Ward, Hauke;  Zhang, Kun
收藏  |  浏览/下载:26/0  |  提交时间:2020/07/02
Greenhouse gas  Pollutant  Multi-regional input-output  China  Co-benefits  Elasticity analysis  
East Siberian Arctic inland waters emit mostly contemporary carbon 期刊论文
NATURE COMMUNICATIONS, 2020, 11 (1)
作者:  Dean, Joshua F.;  Meisel, Ove H.;  Rosco, Melanie Martyn;  Marchesini, Luca Belelli;  Garnett, Mark H.;  Lenderink, Henk;  van Logtestijn, Richard;  Borges, Alberto, V;  Bouillon, Steven;  Lambert, Thibault;  Rockmann, Thomas;  Maximov, Trofim;  Petrov, Roman;  Karsanaev, Sergei;  Aerts, Rien;  van Huissteden, Jacobus;  Vonk, Jorien E.;  Dolman, A. Johannes
收藏  |  浏览/下载:14/0  |  提交时间:2020/05/13
Prompt rewetting of drained peatlands reduces climate warming despite methane emissions 期刊论文
NATURE COMMUNICATIONS, 2020, 11 (1)
作者:  Guenther, Anke;  Barthelmes, Alexandra;  Huth, Vytas;  Joosten, Hans;  Jurasinski, Gerald;  Koebsch, Franziska;  Couwenberg, John
收藏  |  浏览/下载:9/0  |  提交时间:2020/05/13
Net emission reductions from electric cars and heat pumps in 59 world regions over time 期刊论文
NATURE SUSTAINABILITY, 2020, 3 (6) : 437-447
作者:  Knobloch, Florian;  Hanssen, Steef V.;  Lam, Aileen;  Pollitt, Hector;  Salas, Pablo;  Chewpreecha, Unnada;  Huijbregts, Mark A. J.;  Mercure, Jean-Francois
收藏  |  浏览/下载:14/0  |  提交时间:2020/05/13
Towards a more effective climate policy on international trade 期刊论文
NATURE COMMUNICATIONS, 2020, 11 (1)
作者:  Dietzenbacher, Erik;  Cazcarro, Ignacio;  Arto, Inaki
收藏  |  浏览/下载:10/0  |  提交时间:2020/05/13
Measured greenhouse gas budgets challenge emission savings from palm-oil biodiesel 期刊论文
NATURE COMMUNICATIONS, 2020, 11 (1)
作者:  Meijide, Ana;  de la Rua, Cristina;  Guillaume, Thomas;  Roell, Alexander;  Hassler, Evelyn;  Stiegler, Christian;  Tjoa, Aiyen;  June, Tania;  Corre, Marife D.;  Veldkamp, Edzo;  Knohl, Alexander
收藏  |  浏览/下载:10/0  |  提交时间:2020/05/13
Preindustrial (CH4)-C-14 indicates greater anthropogenic fossil CH4 emissions 期刊论文
NATURE, 2020, 578 (7795) : 409-+
作者:  Keener, Megan;  Hunt, Camden;  Carroll, Timothy G.;  Kampel, Vladimir;  Dobrovetsky, Roman;  Hayton, Trevor W.;  Menard, Gabriel
收藏  |  浏览/下载:25/0  |  提交时间:2020/05/13

Atmospheric methane (CH4) is a potent greenhouse gas, and its mole fraction has more than doubled since the preindustrial era(1). Fossil fuel extraction and use are among the largest anthropogenic sources of CH4 emissions, but the precise magnitude of these contributions is a subject of debate(2,3). Carbon-14 in CH4 ((CH4)-C-14) can be used to distinguish between fossil (C-14-free) CH4 emissions and contemporaneous biogenic sources  however, poorly constrained direct (CH4)-C-14 emissions from nuclear reactors have complicated this approach since the middle of the 20th century(4,5). Moreover, the partitioning of total fossil CH4 emissions (presently 172 to 195 teragrams CH4 per year)(2,3) between anthropogenic and natural geological sources (such as seeps and mud volcanoes) is under debate  emission inventories suggest that the latter account for about 40 to 60 teragrams CH4 per year(6,7). Geological emissions were less than 15.4 teragrams CH4 per year at the end of the Pleistocene, about 11,600 years ago(8), but that period is an imperfect analogue for present-day emissions owing to the large terrestrial ice sheet cover, lower sea level and extensive permafrost. Here we use preindustrial-era ice core (CH4)-C-14 measurements to show that natural geological CH4 emissions to the atmosphere were about 1.6 teragrams CH4 per year, with a maximum of 5.4 teragrams CH4 per year (95 per cent confidence limit)-an order of magnitude lower than the currently used estimates. This result indicates that anthropogenic fossil CH4 emissions are underestimated by about 38 to 58 teragrams CH4 per year, or about 25 to 40 per cent of recent estimates. Our record highlights the human impact on the atmosphere and climate, provides a firm target for inventories of the global CH4 budget, and will help to inform strategies for targeted emission reductions(9,10).


Isotopic evidence from ice cores indicates that preindustrial-era geological methane emissions were lower than previously thought, suggesting that present-day emissions of methane from fossil fuels are underestimated.