Afforesting arid land with renewable electricity and desalination to mitigate climate change
暂无分享,去创建一个
[1] A. Kraslawski,et al. Using Waste Brine from Desalination Plant as a Source of Industrial Water in Copper Mining Industry , 2022, Minerals.
[2] O. Yıldız,et al. Restoration success in afforestation sites established at different times in arid lands of Central Anatolia , 2022, Forest Ecology and Management.
[3] M. Hansen,et al. Global maps of cropland extent and change show accelerated cropland expansion in the twenty-first century , 2021, Nature Food.
[4] G. Luderer,et al. Impact of declining renewable energy costs on electrification in low-emission scenarios , 2021, Nature Energy.
[5] A. Mirzabaev,et al. Economic efficiency and targeting of the African Great Green Wall , 2021, Nature Sustainability.
[6] Shamil Maksyutov,et al. Regional trends and drivers of the global methane budget , 2021, Global change biology.
[7] Zhengyi Yao,et al. The impact of large-scale afforestation on ecological environment in the Gobi region , 2021, Scientific Reports.
[8] C. Breyer,et al. Low-cost renewable electricity as the key driver of the global energy transition towards sustainability , 2021, Energy.
[9] A. Tukker,et al. Negative-emissions technology portfolios to meet the 1.5 °C target , 2021, Global Environmental Change.
[10] C. Barbosa,et al. Dust arriving in the Amazon basin over the past 7,500 years came from diverse sources , 2021, Communications Earth & Environment.
[11] C. Breyer,et al. Full energy sector transition towards 100% renewable energy supply: Integrating power, heat, transport and industry sectors including desalination , 2020 .
[12] N. Saleous,et al. Allometric equations coupled with remotely sensed variables to estimate carbon stocks in date palms , 2020 .
[13] Atul K. Jain,et al. Global Carbon Budget 2020 , 2020, Earth System Science Data.
[14] C. Breyer,et al. Strengthening the global water supply through a decarbonised global desalination sector and improved irrigation systems , 2020 .
[15] C. Breyer,et al. Can seawater desalination be a win-win fix to our water cycle? , 2020, Water research.
[16] A. Berg,et al. The Greening of the Sahara: Past Changes and Future Implications , 2020 .
[17] Andrzej Tabeau,et al. Afforestation for climate change mitigation: Potentials, risks and trade‐offs , 2019, Global change biology.
[18] David Birge,et al. Potential for sustainable use of trees in hot arid regions: A case study of Emirati neighborhoods in Abu Dhabi , 2019, Landscape and Urban Planning.
[19] Felix Creutzig,et al. Direct Air Capture of CO2: A Key Technology for Ambitious Climate Change Mitigation , 2019, Joule.
[20] Claude A. Garcia,et al. The global tree restoration potential , 2019, Science.
[21] Christian Breyer,et al. Techno-economic assessment of CO2 direct air capture plants , 2019, Journal of Cleaner Production.
[22] S. Lewis,et al. Restoring natural forests is the best way to remove atmospheric carbon , 2019, Nature.
[23] E. Jones,et al. The state of desalination and brine production: A global outlook. , 2019, The Science of the total environment.
[24] Gregory P. Thiel,et al. Direct electrosynthesis of sodium hydroxide and hydrochloric acid from brine streams , 2019, Nature Catalysis.
[25] Atul K. Jain,et al. Land-use emissions play a critical role in land-based mitigation for Paris climate targets , 2018, Nature Communications.
[26] Christian Breyer,et al. The role that battery and water storage play in Saudi Arabia’s transition to an integrated 100% renewable energy power system , 2018, Journal of Energy Storage.
[27] R. Walko,et al. Large-scale semi-arid afforestation can enhance precipitation and carbon sequestration potential , 2018, Scientific Reports.
[28] A. Oschlies,et al. Atmospheric feedbacks in North Africa from an irrigated, afforested Sahara , 2018, Climate Dynamics.
[29] Felix Creutzig,et al. Negative emissions—Part 1: Research landscape and synthesis , 2018 .
[30] J. Hansen,et al. Young People's Burden: Requirement of Negative CO2 Emissions , 2016, 1609.05878.
[31] N. Nakicenovic,et al. Biophysical and economic limits to negative CO2 emissions , 2016 .
[32] K. Ahmadi,et al. Above- and below-ground biomass and carbon stocks of different tree plantations in central Iran , 2016, Journal of Arid Land.
[33] P. Dargusch,et al. An assessment of the carbon stocks and sodicity tolerance of disturbed Melaleuca forests in Southern Vietnam , 2015, Carbon Balance and Management.
[34] Kelin Wang,et al. Carbon Storage in a Eucalyptus Plantation Chronosequence in Southern China , 2015 .
[35] Robert J. Pabst,et al. Rate of tree carbon accumulation increases continuously with tree size , 2014, Nature.
[36] M. Tavoni,et al. Direct air capture of CO2 and climate stabilization: A model based assessment , 2013, Climatic Change.
[37] R. B. Jackson,et al. A Large and Persistent Carbon Sink in the World’s Forests , 2011, Science.
[38] Sandra A. Brown,et al. Estimating carbon supply curves from afforestation of agricultural land in the Northeastern U.S. , 2011 .
[39] Dan Yakir,et al. Contribution of Semi-Arid Forests to the Climate System , 2010, Science.