Long-term organic fertilizer-induced carbonate neoformation increases carbon sequestration in soil

被引:0
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作者
Enke Liu
Jie Zhou
Xiao Yang
Tao Jin
Bingqiang Zhao
Lili Li
Yanchen Wen
Evgeniya Soldatova
Kazem Zamanian
Subramaniam Gopalakrishnan
Xurong Mei
Yakov Kuzyakov
机构
[1] Chinese Academy of Agricultural Sciences,Institute of Environment and Sustainable Development in Agriculture
[2] State Key Laboratory of Hulless Barley and Yak Germplasm Resources and Genetic Improvement,Biogeochemistry of Agroecosystems, Department of Crop Science
[3] Georg August University of Göttingen,The Institute of Agricultural Resources and Regional Planning
[4] Chinese Academy of Agricultural Sciences,Institute of Soil Science
[5] Pingliang Academy of Agricultural Sciences,School of Geographical Sciences
[6] University of Tyumen,Key Laboratory of Agricultural Environment
[7] Leibniz University of Hanover,Key Laboratory of Dryland Agriculture
[8] Nanjing University of Information Science and Technology,Department of Soil Science of Temperate Ecosystems
[9] International Crops Research Institute for the Semi-Arid Tropics (ICRISAT),Institute of Environmental Sciences
[10] Ministry of Agriculture and Rural Affairs of the People’s Republic of China (MARA),undefined
[11] Ministry of Agriculture and Rural Affairs of the People’s Republic of China (MARA),undefined
[12] University of Göttingen,undefined
[13] Peoples Friendship University of Russia,undefined
[14] RUDN University),undefined
[15] Kazan Federal University,undefined
来源
关键词
Pedogenic and geogenic carbonates; C isotope application; Carbon sequestration; Mineral and organic fertilization; Land use practices;
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摘要
Soil carbon is major driver of climate in the long term because soil can either decrease global warming by carbon sequestration or increase warming by emissions of greenhouse gases. Soil inorganic carbon is mainly composed of carbonates and represents globally more than half of the total soil carbon stock up to a 2-m depth. The dissolution of carbonates by fertilization-induced acidification may offset the global efforts aimed at organic carbon sequestration, yet this process is poorly understood. Here, we evaluated the effects of fertilization strategies on inorganic carbon contents and stocks to 120 cm soil depth by using natural δ13C signature of organic and inorganic carbon in 32- and 40-year field experiments. Results show that long-term application of mineral nitrogen and phosphorous fertilizers acidified soils by 0.2 pH units. This caused inorganic carbon dissolution and carbon dioxide emissions of 9–12 Mg C per hectare, representing 12–18% of the initial stock in the top 60 cm. By contrast, manure application increased inorganic carbon stock by 8.9–11 Mg C per hectare, representing 4.8–17% of the initial stock up to 120 cm depth. The main pathway of inorganic carbon accumulation under organic fertilization is the neoformation of pedogenic carbonates and the conservation of lithogenic carbonates. Manure combined with mineral fertilizers did not affect inorganic carbon and therefore provides an optimal solution to mitigate carbon losses from soil.
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页码:663 / 671
页数:8
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