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Achievable agricultural soil carbon sequestration across Europe from country‐specific estimates

The role of soils in the global carbon cycle and in reducing GHG emissions from agriculture has been increasingly acknowledged. The ‘4 per 1000’ (4p1000) initiative has become a prominent action plan for climate change mitigation and achieve food security through an annual increase in soil organic c...

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Autores principales: Rodrigues, Leonor, Hardy, Brieuc, Huyghebeart, Bruno, Fohrafellner, Julia, Fornara, Dario, Barančíková, Gabriela, Bárcena, Teresa G., De Boever, Maarten, Di Bene, Claudia, Feizienė, Dalia, Kätterer, Thomas, Laszlo, Peter, O’Sullivan, Lilian, Seitz, Daria, Leifeld, Jens
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9293132/
https://www.ncbi.nlm.nih.gov/pubmed/34543496
http://dx.doi.org/10.1111/gcb.15897
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author Rodrigues, Leonor
Hardy, Brieuc
Huyghebeart, Bruno
Fohrafellner, Julia
Fornara, Dario
Barančíková, Gabriela
Bárcena, Teresa G.
De Boever, Maarten
Di Bene, Claudia
Feizienė, Dalia
Kätterer, Thomas
Laszlo, Peter
O’Sullivan, Lilian
Seitz, Daria
Leifeld, Jens
author_facet Rodrigues, Leonor
Hardy, Brieuc
Huyghebeart, Bruno
Fohrafellner, Julia
Fornara, Dario
Barančíková, Gabriela
Bárcena, Teresa G.
De Boever, Maarten
Di Bene, Claudia
Feizienė, Dalia
Kätterer, Thomas
Laszlo, Peter
O’Sullivan, Lilian
Seitz, Daria
Leifeld, Jens
author_sort Rodrigues, Leonor
collection PubMed
description The role of soils in the global carbon cycle and in reducing GHG emissions from agriculture has been increasingly acknowledged. The ‘4 per 1000’ (4p1000) initiative has become a prominent action plan for climate change mitigation and achieve food security through an annual increase in soil organic carbon (SOC) stocks by 0.4%, (i.e. 4‰ per year). However, the feasibility of the 4p1000 scenario and, more generally, the capacity of individual countries to implement soil carbon sequestration (SCS) measures remain highly uncertain. Here, we evaluated country‐specific SCS potentials of agricultural land for 24 countries in Europe. Based on a detailed survey of available literature, we estimate that between 0.1% and 27% of the agricultural greenhouse gas (GHG) emissions can potentially be compensated by SCS annually within the next decades. Measures varied widely across countries, indicating differences in country‐specific environmental conditions and agricultural practices. None of the countries' SCS potential reached the aspirational goal of the 4p1000 initiative, suggesting that in order to achieve this goal, a wider range of measures and implementation pathways need to be explored. Yet, SCS potentials exceeded those from previous pan‐European modelling scenarios, underpinning the general need to include national/regional knowledge and expertise to improve estimates of SCS potentials. The complexity of the chosen SCS measurement approaches between countries ranked from tier 1 to tier 3 and included the effect of different controlling factors, suggesting that methodological improvements and standardization of SCS accounting are urgently required. Standardization should include the assessment of key controlling factors such as realistic areas, technical and practical feasibility, trade‐offs with other GHG and climate change. Our analysis suggests that country‐specific knowledge and SCS estimates together with improved data sharing and harmonization are crucial to better quantify the role of soils in offsetting anthropogenic GHG emissions at global level.
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spelling pubmed-92931322022-07-20 Achievable agricultural soil carbon sequestration across Europe from country‐specific estimates Rodrigues, Leonor Hardy, Brieuc Huyghebeart, Bruno Fohrafellner, Julia Fornara, Dario Barančíková, Gabriela Bárcena, Teresa G. De Boever, Maarten Di Bene, Claudia Feizienė, Dalia Kätterer, Thomas Laszlo, Peter O’Sullivan, Lilian Seitz, Daria Leifeld, Jens Glob Chang Biol Primary Research Articles The role of soils in the global carbon cycle and in reducing GHG emissions from agriculture has been increasingly acknowledged. The ‘4 per 1000’ (4p1000) initiative has become a prominent action plan for climate change mitigation and achieve food security through an annual increase in soil organic carbon (SOC) stocks by 0.4%, (i.e. 4‰ per year). However, the feasibility of the 4p1000 scenario and, more generally, the capacity of individual countries to implement soil carbon sequestration (SCS) measures remain highly uncertain. Here, we evaluated country‐specific SCS potentials of agricultural land for 24 countries in Europe. Based on a detailed survey of available literature, we estimate that between 0.1% and 27% of the agricultural greenhouse gas (GHG) emissions can potentially be compensated by SCS annually within the next decades. Measures varied widely across countries, indicating differences in country‐specific environmental conditions and agricultural practices. None of the countries' SCS potential reached the aspirational goal of the 4p1000 initiative, suggesting that in order to achieve this goal, a wider range of measures and implementation pathways need to be explored. Yet, SCS potentials exceeded those from previous pan‐European modelling scenarios, underpinning the general need to include national/regional knowledge and expertise to improve estimates of SCS potentials. The complexity of the chosen SCS measurement approaches between countries ranked from tier 1 to tier 3 and included the effect of different controlling factors, suggesting that methodological improvements and standardization of SCS accounting are urgently required. Standardization should include the assessment of key controlling factors such as realistic areas, technical and practical feasibility, trade‐offs with other GHG and climate change. Our analysis suggests that country‐specific knowledge and SCS estimates together with improved data sharing and harmonization are crucial to better quantify the role of soils in offsetting anthropogenic GHG emissions at global level. John Wiley and Sons Inc. 2021-10-06 2021-12 /pmc/articles/PMC9293132/ /pubmed/34543496 http://dx.doi.org/10.1111/gcb.15897 Text en © 2021 The Authors. Global Change Biology published by John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Primary Research Articles
Rodrigues, Leonor
Hardy, Brieuc
Huyghebeart, Bruno
Fohrafellner, Julia
Fornara, Dario
Barančíková, Gabriela
Bárcena, Teresa G.
De Boever, Maarten
Di Bene, Claudia
Feizienė, Dalia
Kätterer, Thomas
Laszlo, Peter
O’Sullivan, Lilian
Seitz, Daria
Leifeld, Jens
Achievable agricultural soil carbon sequestration across Europe from country‐specific estimates
title Achievable agricultural soil carbon sequestration across Europe from country‐specific estimates
title_full Achievable agricultural soil carbon sequestration across Europe from country‐specific estimates
title_fullStr Achievable agricultural soil carbon sequestration across Europe from country‐specific estimates
title_full_unstemmed Achievable agricultural soil carbon sequestration across Europe from country‐specific estimates
title_short Achievable agricultural soil carbon sequestration across Europe from country‐specific estimates
title_sort achievable agricultural soil carbon sequestration across europe from country‐specific estimates
topic Primary Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9293132/
https://www.ncbi.nlm.nih.gov/pubmed/34543496
http://dx.doi.org/10.1111/gcb.15897
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