Soil organic carbon pools under long-term mineral and organic amendments: a multisite study

Soil organic carbon (SOC) has various pools with different stabilization mechanisms. It is unclear how these SOC pools respond to various mineral and organic amendments depending on a large climate-soil gradient. Here, we studied in three zonal soils: Ferralic Cambisol (subtropic), Calcaric Cambisol (warm-temperate) and Luvic Phaeozem (mid-temperate) under 23-year mineral, straw and manure amendments. Six SOC sub-pools were isolated: unprotected, physically, chemically, biochemically, physico-chemically and physico-biochemically protected pools. Compared to initial level, SOC and most sub-pools increased in the three soils under manure application (p < 0.05), but little under straw and mineral amendments. The Luvic Phaeozems had much higher sequestration efficiencies of bulk SOC (27%) and its five sub-pools (5–7%) more than the Calcaric Cambisol (9%, 1–2%) and Ferralic Cambisol (9%, 0.5–1%). In contrast, Ferralic Cambisol had highest sequestration efficiency of unprotected pool (7%). The Calcaric Cambisol had divergent patterns of the six SOC pools compared with Luvic Phaeozems and Ferralic Cambisol, due to the low clay content. With the build-up of bulk SOC, the building-up abilities of non-protected, physically-, chemically- and biochemically-protected pools depended on soil type, while the building-up abilities of physico-chemically- and physico-biochemically-protected pools were convergent (12–19%) among soils. In conclusion, the Luvic Phaeozems had much higher build-up ability of bulk SOC and most sub-pools than the other two soils. With the build-up of SOC, the physico-chemically- and physico-biochemically-protected pools (most stable) had convergent response rates among soils, while the other pools had divergent response rates. Graphical Abstract: (Figure presented.). © 2024 Elsevier B.V., All rights reserved.

Авторы
Liu Yiping 1 , Zhang Limin 2 , Lou Yilai 2 , Hu Ning 3 , Li Zhongfang 3 , Zhang Huimin 4 , Zhu Ping 5 , Li Dongchu 4 , Gao Hongjun 5 , Zhang Shuiqing 6 , Lu Shunbao 7 , Bhattacharyya Ranjan 8 , KUZYAKOV Yakov V. 1, 9, 10, 11 , Wang Yidong 1
Journal
Издательство
Springer Nature
Номер выпуска
1
Язык
English
Статус
Published
Номер
29
Том
3
Год
2024
Организации
  • 1 Faculty of Geography, Tianjin Normal University, Tianjin, China
  • 2 Institute of Environment and Sustainable Development in Agriculture, Chinese Academy of Agricultural Sciences, Beijing, China
  • 3 School of Food and Biological Engineering, Hezhou University, Hezhou, China
  • 4 Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Beijing, China
  • 5 Institute of Agricultural Resources and Environment, Jilin Academy of Agricultural Sciences, Changchun, China
  • 6 Institute of Plant Nutrition and Environmental Resources Science, Henan Academy of Agricultural Sciences, Zhengzhou, China
  • 7 Jiangxi Normal University, Nanchang, China
  • 8 ICAR - Indian Agricultural Research Institute, New Delhi, New Delhi, India
  • 9 Department of Agricultural Soil Science, Georg-August-Universität Göttingen, Gottingen, Germany
  • 10 RUDN University, Moscow, Russian Federation
  • 11 Institute of Environmental Sciences, Kazan Federal University, Kazan, Russian Federation
Ключевые слова
Manure amendment; Microaggregate; Particulate organic matter; Soil aggregation; Soil C sequestration; Soil organic matter
Цитировать
Поделиться

Другие записи

Avatkov V.A., Apanovich M.Yu., Borzova A.Yu., Bordachev T.V., Vinokurov V.I., Volokhov V.I., Vorobev S.V., Gumensky A.V., Иванченко В.С., Kashirina T.V., Матвеев О.В., Okunev I.Yu., Popleteeva G.A., Sapronova M.A., Свешникова Ю.В., Fenenko A.V., Feofanov K.A., Tsvetov P.Yu., Shkolyarskaya T.I., Shtol V.V. ...
Общество с ограниченной ответственностью Издательско-торговая корпорация "Дашков и К". 2018. 411 с.