Potentials, Limitations, Co-Benefits, and Trade-Offs of Biochar Applications to Soils for Climate Change Mitigation
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- Constanze Werner & Wolfgang Lucht & Claudia Kammann & Johanna Braun, 2024. "Land-neutral negative emissions through biochar-based fertilization—assessing global potentials under varied management and pyrolysis conditions," Mitigation and Adaptation Strategies for Global Change, Springer, vol. 29(5), pages 1-28, June.
- José Guillermo Rosas & Natalia Gómez & Jorge Cara-Jiménez & Judith González-Arias & Miguel Ángel Olego & Marta E. Sánchez, 2020. "Evaluation of Joint Management of Pine Wood Waste and Residual Microalgae for Agricultural Application," Sustainability, MDPI, vol. 13(1), pages 1-18, December.
- Lauri Leppäkoski & Miika P. Marttila & Ville Uusitalo & Jarkko Levänen & Vilma Halonen & Mirja H. Mikkilä, 2021. "Assessing the Carbon Footprint of Biochar from Willow Grown on Marginal Lands in Finland," Sustainability, MDPI, vol. 13(18), pages 1-19, September.
- Polina Kuryntseva & Kamalya Karamova & Polina Galitskaya & Svetlana Selivanovskaya & Gennady Evtugyn, 2023. "Biochar Functions in Soil Depending on Feedstock and Pyrolyzation Properties with Particular Emphasis on Biological Properties," Agriculture, MDPI, vol. 13(10), pages 1-39, October.
- Leonard A. Miller & Philip M. Orton, 2021. "Achieving negative emissions through oceanic sequestration of vegetation carbon as Black Pellets," Climatic Change, Springer, vol. 167(3), pages 1-23, August.
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Keywords
biochar; pyrolysis; food security; climate mitigation; negative emission technology; carbon dioxide removal; life-cycle assessment; environmental assessment; biogeochemical cycles; biophysical effects;All these keywords.
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