IDEAS home Printed from https://ideas.repec.org/a/spr/masfgc/v25y2020i6d10.1007_s11027-020-09920-7.html
   My bibliography  Save this article

Biochar from cookstoves reduces greenhouse gas emissions from smallholder farms in Africa

Author

Listed:
  • Cecilia Sundberg

    (KTH Royal Institute of Technology
    Swedish University of Agricultural Sciences)

  • Erik Karltun

    (Swedish University of Agricultural Sciences)

  • James K. Gitau

    (University of Nairobi)

  • Thomas Kätterer

    (Swedish University of Agricultural Sciences)

  • Geoffrey M. Kimutai

    (IITA)

  • Yahia Mahmoud

    (Lund University)

  • Mary Njenga

    (University of Nairobi
    World Agroforestry (ICRAF))

  • Gert Nyberg

    (Swedish University of Agricultural Sciences)

  • Kristina Roing de Nowina

    (Swedish University of Agricultural Sciences
    CGIAR System Organization)

  • Dries Roobroeck

    (IITA)

  • Petra Sieber

    (Swedish University of Agricultural Sciences)

Abstract

Biochar produced in cookstoves has the potential to contribute to negative carbon emissions through sequestration of biomass carbon while also providing other benefits for sustainable development, including provision of clean renewable energy and increased yields in tropical agriculture. The aim of the reported research was to estimate effects on food production, household energy access and life cycle climate impact from introduction of biochar-producing cookstoves on smallholder farms in Kenya. Participatory research on biochar production and use was undertaken with 150 Kenyan smallholder farming households. Gasifier cookstove functionality, fuel efficiency and emissions were measured, as well as biochar effects on agricultural yields after application to soil. Cookstoves provided benefits through reduced smoke, fuel wood savings and char production, but challenges were found related to labour for fuel preparation, lighting and refilling. On-farm trials with varying rates of biochar inputs, in combination with and without mineral fertilizers, have led to a sustained increase of maize yields following one-time application. The climate impact in a life cycle perspective was considerably lower for the system with cookstove production of biochar and use of biochar in agriculture than for current cooking practices. Climate benefits from biochar production and use are thus possible on smallholder farms in sub-Saharan Africa, through reduced use of biomass in cooking, reduced emissions of products of incomplete combustion and sequestration of stable biochar carbon in soils. Biochar-producing cookstoves can be implemented as a climate change mitigation method in rural sub-Saharan Africa. Successful implementation will require changes in cooking systems including fuel supply, as well as farming systems, which, in turn, requires an understanding of local socio-cultural conditions, including power relations and gender aspects.

Suggested Citation

  • Cecilia Sundberg & Erik Karltun & James K. Gitau & Thomas Kätterer & Geoffrey M. Kimutai & Yahia Mahmoud & Mary Njenga & Gert Nyberg & Kristina Roing de Nowina & Dries Roobroeck & Petra Sieber, 2020. "Biochar from cookstoves reduces greenhouse gas emissions from smallholder farms in Africa," Mitigation and Adaptation Strategies for Global Change, Springer, vol. 25(6), pages 953-967, August.
  • Handle: RePEc:spr:masfgc:v:25:y:2020:i:6:d:10.1007_s11027-020-09920-7
    DOI: 10.1007/s11027-020-09920-7
    as

    Download full text from publisher

    File URL: http://link.springer.com/10.1007/s11027-020-09920-7
    File Function: Abstract
    Download Restriction: Access to the full text of the articles in this series is restricted.

    File URL: https://libkey.io/10.1007/s11027-020-09920-7?utm_source=ideas
    LibKey link: if access is restricted and if your library uses this service, LibKey will redirect you to where you can use your library subscription to access this item
    ---><---

    As the access to this document is restricted, you may want to search for a different version of it.

    References listed on IDEAS

    as
    1. Grieshop, Andrew P. & Marshall, Julian D. & Kandlikar, Milind, 2011. "Health and climate benefits of cookstove replacement options," Energy Policy, Elsevier, vol. 39(12), pages 7530-7542.
    2. Fu, Xiaolan & Pietrobelli, Carlo & Soete, Luc, 2011. "The Role of Foreign Technology and Indigenous Innovation in the Emerging Economies: Technological Change and Catching-up," World Development, Elsevier, vol. 39(7), pages 1204-1212, July.
    3. Lowder, Sarah K. & Skoet, Jakob & Raney, Terri, 2016. "The Number, Size, and Distribution of Farms, Smallholder Farms, and Family Farms Worldwide," World Development, Elsevier, vol. 87(C), pages 16-29.
    4. Reddy, N. Mohan & Zhao, Liming, 1990. "International technology transfer: A review," Research Policy, Elsevier, vol. 19(4), pages 285-307, August.
    5. Leblois, Antoine & Damette, Olivier & Wolfersberger, Julien, 2017. "What has Driven Deforestation in Developing Countries Since the 2000s? Evidence from New Remote-Sensing Data," World Development, Elsevier, vol. 92(C), pages 82-102.
    Full references (including those not matched with items on IDEAS)

    Most related items

    These are the items that most often cite the same works as this one and are cited by the same works as this one.
    1. Lema, Adrian & Lema, Rasmus, 2016. "Low-carbon innovation and technology transfer in latecomer countries: Insights from solar PV in the clean development mechanism," Technological Forecasting and Social Change, Elsevier, vol. 104(C), pages 223-236.
    2. Guridi, Jose A. & Pertuze, Julio A. & Pfotenhauer, Sebastian M., 2020. "Natural laboratories as policy instruments for technological learning and institutional capacity building: The case of Chile's astronomy cluster," Research Policy, Elsevier, vol. 49(2).
    3. Edward B. Barbier, 2022. "The Policy Implications of the Dasgupta Review: Land Use Change and Biodiversity," Environmental & Resource Economics, Springer;European Association of Environmental and Resource Economists, vol. 83(4), pages 911-935, December.
    4. Giuliani, Elisa & Martinelli, Arianna & Rabellotti, Roberta, 2016. "Is Co-Invention Expediting Technological Catch Up? A Study of Collaboration between Emerging Country Firms and EU Inventors," World Development, Elsevier, vol. 77(C), pages 192-205.
    5. MacCarty, Nordica A. & Bryden, Kenneth Mark, 2016. "An integrated systems model for energy services in rural developing communities," Energy, Elsevier, vol. 113(C), pages 536-557.
    6. Skutsch, Margaret & Turnhout, Esther, 2020. "REDD+: If communities are the solution, what is the problem?," World Development, Elsevier, vol. 130(C).
    7. Luis Bauluz & Yajna Govind & Filip Novokmet, 2020. "Global Land Inequality," PSE Working Papers halshs-03022318, HAL.
    8. Kamal Hussain & Fazlur Rahman & Ihsan Ullah & Zahir Ahmad & Udo Schickhoff, 2022. "Assessing the Impacts of Population Growth and Roads on Forest Cover: A Temporal Approach to Reconstruct the Deforestation Process in District Kurram, Pakistan, since 1972," Land, MDPI, vol. 11(6), pages 1-23, May.
    9. Riccardo Crescenzi & Carlo Pietrobelli & Roberta Rabellotti, 2012. "Innovation Drivers, Value Chains and the Geography of Multinational Firms in European Regions," LEQS – LSE 'Europe in Question' Discussion Paper Series 53, European Institute, LSE.
    10. Asongu, Simplice & Boateng, Agyenim & Akamavi, Raphael, 2016. "Mobile Phone Innovation and Inclusive Human Development: Evidence from Sub-Saharan Africa," MPRA Paper 75046, University Library of Munich, Germany.
    11. Mario Pansera & Fabien Martinez, 2017. "Innovation for development and poverty reduction: an integrative literature review," Post-Print hal-02887777, HAL.
    12. Ajanaku, B.A. & Collins, A.R., 2021. "Economic growth and deforestation in African countries: Is the environmental Kuznets curve hypothesis applicable?," Forest Policy and Economics, Elsevier, vol. 129(C).
    13. Livia Marchetti & Valentina Cattivelli & Claudia Cocozza & Fabio Salbitano & Marco Marchetti, 2020. "Beyond Sustainability in Food Systems: Perspectives from Agroecology and Social Innovation," Sustainability, MDPI, vol. 12(18), pages 1-24, September.
    14. Khanindra Ch. Das, 2013. "Home Country Determinants of Outward FDI from Developing Countries," Margin: The Journal of Applied Economic Research, National Council of Applied Economic Research, vol. 7(1), pages 93-116, February.
    15. Alessia Amighini & Claudio Cozza & Elisa Giuliani & Roberta Rabellotti & Vittoria Scalera, 2015. "Multinational enterprises from emerging economies: what theories suggest, what evidence shows. A literature review," Economia e Politica Industriale: Journal of Industrial and Business Economics, Springer;Associazione Amici di Economia e Politica Industriale, vol. 42(3), pages 343-370, September.
    16. van Alphen, Klaas & Hekkert, Marko P. & van Sark, Wilfried G.J.H.M., 2008. "Renewable energy technologies in the Maldives--Realizing the potential," Renewable and Sustainable Energy Reviews, Elsevier, vol. 12(1), pages 162-180, January.
    17. Haddoud, Mohamed Yacine & Kock, Ned & Onjewu, Adah-Kole Emmanuel & Jafari-Sadeghi, Vahid & Jones, Paul, 2023. "Technology, innovation and SMEs' export intensity: Evidence from Morocco," Technological Forecasting and Social Change, Elsevier, vol. 191(C).
    18. Hurley, Mason, 2016. "Re-examining Changes in Farm Size Distributions Worldwide Using a Modified Generalized Method of Moments Approach," Master's Theses and Plan B Papers 249287, University of Minnesota, Department of Applied Economics.
    19. Yuping Deng & Yanrui Wu & Helian Xu, 2022. "Emission Reduction and Value-added Export Nexus at Firm Level," Economics Discussion / Working Papers 22-19, The University of Western Australia, Department of Economics.
    20. Dirk Dohse & Rajeev K. Goel & Michael A. Nelson, 2019. "What induces firms to license foreign technologies? International survey evidence," Managerial and Decision Economics, John Wiley & Sons, Ltd., vol. 40(7), pages 799-814, October.

    Corrections

    All material on this site has been provided by the respective publishers and authors. You can help correct errors and omissions. When requesting a correction, please mention this item's handle: RePEc:spr:masfgc:v:25:y:2020:i:6:d:10.1007_s11027-020-09920-7. See general information about how to correct material in RePEc.

    If you have authored this item and are not yet registered with RePEc, we encourage you to do it here. This allows to link your profile to this item. It also allows you to accept potential citations to this item that we are uncertain about.

    If CitEc recognized a bibliographic reference but did not link an item in RePEc to it, you can help with this form .

    If you know of missing items citing this one, you can help us creating those links by adding the relevant references in the same way as above, for each refering item. If you are a registered author of this item, you may also want to check the "citations" tab in your RePEc Author Service profile, as there may be some citations waiting for confirmation.

    For technical questions regarding this item, or to correct its authors, title, abstract, bibliographic or download information, contact: Sonal Shukla or Springer Nature Abstracting and Indexing (email available below). General contact details of provider: http://www.springer.com .

    Please note that corrections may take a couple of weeks to filter through the various RePEc services.

    IDEAS is a RePEc service. RePEc uses bibliographic data supplied by the respective publishers.