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The climate change mitigation potential of bioenergy with carbon capture and storage

Datos Bibliográficos

ID21794342
AutoresSteef V Hanssen (0000-0002-7673-8509, Radboud University Nijmegen, autor de correspondencia), Vassilis Daioglou (0000-0002-6028-352X, Netherlands Environmental Assessment Agency), Zoran J N Steinmann (0000-0001-8606-917X, Radboud University Nijmegen), Jonathan Doelman (0000-0002-6842-573X, Netherlands Environmental Assessment Agency), J C Doelman, Detlef P Van Vuuren (0000-0003-0398-2831, Netherlands Environmental Assessment Agency), Mark A J Huijbregts (0000-0002-7037-680X, Radboud University Nijmegen)
Año2020
Volumen10
Número11
Páginas1023-1029
Fecha de publicación2020-11-01
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaNature Climate Change (JOURNAL)
Identificadores de la revistaISSN: 1758-678X • E-ISSN: 1758-6798
EditorialSpringer Science and Business Media LLC (PUBLISHER)
DOI10.1038/s41558-020-0885-y
OpenAlexW3080139240
IdiomaEN
Citas recibidas31
Referencias citadas62

Bio-energy with carbon capture and storage · Bioenergy · Biofuel · Carbon cycle · Carbon dioxide · Carbon sequestration · Climate change · Climate change mitigation · Ecosystem · Global warming · Greenhouse gas · Land use · Land use, land-use change and forestry · Waste management · Climate Change Policy and Economics · Engineering · Environmental Science · Integrated Energy Systems Optimization · Social Acceptance of Renewable Energy · Ecology

  • C degrowth scenarios suggest the need for new mitigation pathways

    Open Access•Lorenz Keyßer, Manfred Lenzen•Nature Communications•2021

  • Decades of increased emissions from forest-fuelled BECCS

    Open Access•Timothy D Searchinger, Liqing Peng et al.•Nature Sustainability•2026

  • Principles for a post-growth scenario of ambitious mitigation and high human well-being

    Open Access•Aljoša Slameršak, Vivien Fisch-Romito et al.•Nature Climate Change•2026

  • Recognition in climate justice

    Open Access•Elisa Paiusco•Environmental Values•2026

  • By-products of sustainable forest management plans in the Brazilian Amazon biome

    Open Access•Joice Machado Martins, Evandro Ferreira Da Silva et al.•Sustainable Futures•2025

  • A review on advancing sustainable energy

    Open Access•A Saravanan, Y P Ragini et al.•Sustainable Futures•2025

  • Assessing synergies and trade-offs of diverging Paris-compliant mitigation strategies with long-term SDG objectives

    Open Access•Jorge Moreno, Dirk-Jan Van De Ven et al.•Global Environmental Change•2022

  • The policy discourse on negative emissions, land-based technologies, and the Global South

    Open Access•Gregor Jaschke, Felix Biermann et al.•Global Environmental Change•2022

  • Early systems change necessary for catalyzing long-term sustainability in a post-2030 agenda

    Open Access•Enayat A Moallemi, Sibel Eker et al.•One Earth•2022

  • Co-deploying biochar and bioenergy with carbon capture and storage improves cost-effectiveness and sustainability of China’s carbon neutrality

    Open Access•Xu Deng, Fei Teng et al.•One Earth•2025

  • A protein transition can free up land to tap vast energy and negative emission potentials

    Open Access•Oscar Rueda, José M Mogollón et al.•One Earth•2024

  • Sustainable land systems in the Anthropocene

    Open Access•Karlheinz Erb, Sarah Matej et al.•One Earth•2024

  • Quantifying food security and mitigation risks consequential to climate change impacts on crop yields

    Open Access•Hermen Luchtenbelt, Jonathan Doelman et al.•Environmental Research Letters•2024

  • The potential of seaweed cultivation to achieve carbon neutrality and mitigate deoxygenation and eutrophication

    Open Access•Guang Gao, Lin Gao et al.•Environmental Research Letters•2021

  • Enhancing energy and food access through reduction of income inequality does not jeopardize the achievement of existing climate pledges

    Open Access•Jon Sampedro, Dirk-Jan Van De Ven et al.•Environmental Research Letters•2025

  • Energy potentials and water requirements from perennial grasses on abandoned land in the former Soviet Union

    Open Access•Jan Sandstad Næ, Cristina Maria Iordan et al.•Environmental Research Letters•2022

  • Potentials and barriers to land-based mitigation technologies and practices (LMTs)—a review

    Open Access•Lokendra Karki, Jenny Lieu et al.•Environmental Research Letters•2023

  • Asymmetric response of precipitation extremes in China to CO 2 removal forcing

    Open Access•Bin Tang, Wenting Hu et al.•Environmental Research Letters•2025

  • Costs of avoiding net negative emissions under a carbon budget

    Open Access•Kaj-Ivar van der Wijst, Andries F Hof et al.•Environmental Research Letters•2021

  • Global biomethane and carbon dioxide removal potential through anaerobic digestion of waste biomass

    Open Access•Yanlei Feng, Lorenzo Rosa•Environmental Research Letters•2024

  • Expert projections on the development and application of bioenergy with carbon capture and storage technologies

    Open Access•Tobias Heimann, Lara-Sophie Wähling et al.•Environmental Research Letters•2025

  • Sustainable scale-up of negative emissions technologies and practices

    Open Access•Selene Cobo, Valentina Negri et al.•Environmental Research Letters•2022

  • Provincial CO2 emission efficiency analysis in China based on a game cross-efficiency approach with a fixed-sum undesirable output

    Open Access•Xiaoqi Zhang, Feng Yang et al.•Environment Development and…•2023

  • The role of BECCS technology in achieving carbon neutrality

    Open Access•Yunlong Zhang, Yun-Long Zhang et al.•Environment Development and…•2023

  • Land-based implications of early climate actions without global net-negative emissions

    Open Access•Tomoko Hasegawa, Shinichiro Fujimori et al.•Nature Sustainability•2021

  • Global bioenergy with carbon capture and storage potential is largely constrained by sustainable irrigation

    Open Access•Zhipin Ai, Naota Hanasaki et al.•Nature Sustainability•2021

  • Effects of global climate mitigation on regional air quality and health

    Open Access•Xinyuan Huang, Vivek Srikrishnan et al.•Nature Sustainability•2023

  • Towards a CO2-neutral steel industry

    Open Access•Floris Swennenhuis, Vincent de Gooyert et al.•Energy Research & Social Science•2022

  • Impact of carbon pricing on mitigation potential in Chinese agriculture

    Open Access•Yizhi Deng, Jing-Yu Liu et al.•Environmental Impact Assessment…•2024

  • Earth system interventions as technologies of the Anthropocene

    Open Access•Jesse L Reynolds•Environmental Innovation and…•2021

  • Advocating afforestation, betting on BECCS

    Pamela Mcelwee•The Journal of Peasant Studies•2023

  • Integrated life-cycle assessment of electricity-supply scenarios confirms global environmental benefit of low-carbon technologies

    Open Access•Edgar G Hertwich, Thomas Gibon et al.•Proceedings of the National…•2015

  • Use of U.S. Croplands for Biofuels Increases Greenhouse Gases Through Emissions from Land-Use Change

    Open Access•Timothy D Searchinger, Timothy Searchinger et al.•Science•2008

  • Biomass resilience of Neotropical secondary forests

    Open Access•Lourens Poorter, Frans Bongers et al.•Nature•2016

  • The representative concentration pathways

    Open Access•Detlef P Van Vuuren, Jae Edmonds et al.•Climatic Change•2011

  • The next generation of scenarios for climate change research and assessment

    Open Access•Richard H Moss, Jae Edmonds et al.•Nature•2010

  • A low energy demand scenario for meeting the 1.5 °C target and sustainable development goals without negative emission technologies

    Open Access•Arnulf Grübler, Charlie Wilson et al.•Nature Energy•2018

  • Bioenergy and climate change mitigation

    Open Access•Felix Creutzig, N H Ravindranath et al.•GCB Bioenergy•2015

  • Meeting global temperature targets—the role of bioenergy with carbon capture and storage

    Open Access•Christian Azar, Daniel Johansson et al.•Environmental Research Letters•2013

  • Quantifying long-term changes in carbon stocks and forest structure from Amazon forest degradation

    Open Access•Danielle I Rappaport, Douglas C Morton et al.•Environmental Research Letters•2018

  • Drivers and patterns of land biosphere carbon balance reversal

    Open Access•Christoph Müller, Elke Stehfest et al.•Environmental Research Letters•2016

  • Negative emissions—Part 2

    Open Access•Sabine Fuss, William F Lamb et al.•Environmental Research Letters•2018

  • Research priorities for negative emissions

    Open Access•Sabine Fuss, Chris Jones et al.•Environmental Research Letters•2016

  • Unprecedented rates of land-use transformation in modelled climate change mitigation pathways

    Open Access•Peter Turner, Peter A Turner et al.•Nature Sustainability•2018

  • A multi-model assessment of food security implications of climate change mitigation

    Open Access•Shinichiro Fujimori, Tomoko Hasegawa et al.•Nature Sustainability•2019

  • Bioenergy with carbon capture and storage (BECCS)

    Open Access•Mathias Fridahl, Mariliis Lehtveer•Energy Research & Social Science•2018

  • Exploring SSP land-use dynamics using the Image model

    Open Access•Jonathan Doelman, Jonathan C Doelman et al.•Global Environmental Change•2017

  • Integrated assessment of biomass supply and demand in climate change mitigation scenarios

    Open Access•Vassilis Daioglou, Jonathan Doelman et al.•Global Environmental Change•2018

  • Comparison of carbon balances between continuous-cover and clear-cut forestry in Sweden

    Open Access•Tomas Lundmark, Johan Bergh et al.•AMBIO•2016

Obras citantes distintas31
Citas por año6,2
Intervalo de citas2021 - 2026 (6)
Velocidad de citacióncurrent
Altamente citadoNo
Tipos de citaNeutras: 31
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