The alterations of soil aggregates and intra-aggregate organic carbon fractions after soil conversion from paddy to upland soil: Distribution, mineralization and driving mechanism
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Chunfeng Zhang | G. Chu | Jiamei Wu | Longfei Kang | B. Zhu | Chunfeng ZHANG | Baoguo ZHU
[1] Hailin Zhang,et al. Sieving soil before incubation experiments overestimates carbon mineralization but underestimates temperature sensitivity. , 2021, The Science of the total environment.
[2] W. Ahmed,et al. Nitrogen Mineralization, Soil Microbial Biomass and Extracellular Enzyme Activities Regulated by Long-Term N Fertilizer Inputs: A Comparison Study from Upland and Paddy Soils in a Red Soil Region of China , 2021, Agronomy.
[3] Qianchun Zhang,et al. Distribution of organic carbon fractions in soil aggregates in Chinese fir plantations with different stand ages , 2021, Ecological Processes.
[4] Wang Lichun,et al. Effect of chemical fertilizer and straw-derived organic amendments on continuous maize yield, soil carbon sequestration and soil quality in a Chinese Mollisol , 2021, Agriculture, Ecosystems & Environment.
[5] Shikha,et al. Carbon Mineralization Rates and Kinetics of Surface-Applied and Incorporated Rice and Maize Residues in Entisol and Inceptisol Soil Types , 2021, Sustainability.
[6] Sandeep Kumar,et al. Soil aggregates, aggregate-associated carbon and nitrogen, and water retention as influenced by short and long-term no-till systems , 2021 .
[7] Y. Kuzyakov,et al. Comparing carbon and nitrogen stocks in paddy and upland soils: Accumulation, stabilization mechanisms, and environmental drivers , 2021 .
[8] Q. Huang,et al. Regulation of soil aggregate size under different fertilizations on dissolved organic matter, cellobiose hydrolyzing microbial community and their roles in organic matter mineralization. , 2020, The Science of the total environment.
[9] K. Mehmood,et al. Soil aggregation and soil aggregate stability regulate organic carbon and nitrogen storage in a red soil of southern China. , 2020, Journal of environmental management.
[10] Jinshui Wu,et al. Diazotrophic Community Variation Underlies Differences in Nitrogen Fixation Potential in Paddy Soils Across a Climatic Gradient in China , 2020, Microbial ecology.
[11] A. Montagnoli,et al. Pioneer and fibrous root seasonal dynamics of Vitis vinifera L. are affected by biochar application to a low fertility soil: A rhizobox approach. , 2020, The Science of the total environment.
[12] B. Glaser,et al. Effect of biochar and compost on soil properties and organic matter in aggregate size fractions under field conditions , 2020 .
[13] I. Odeh,et al. Soil aggregate stability and aggregate‐associated organic carbon under different land use or land cover types , 2020, Soil Use and Management.
[14] B. S. Dwivedi,et al. Long-term fertilisation impact on temperature sensitivity of aggregate associated soil organic carbon in a sub-tropical inceptisol , 2019 .
[15] Xuezheng Shi,et al. Assessing the effects of land use change from rice to vegetable on soil structural quality using X-ray CT , 2019 .
[16] Y. Kuzyakov,et al. Rhizosphere size and shape: Temporal dynamics and spatial stationarity , 2019, Soil Biology and Biochemistry.
[17] V. Bailey,et al. What do we know about soil carbon destabilization? , 2019, Environmental Research Letters.
[18] Bin Zhao,et al. Effects of agricultural land use change on organic carbon and its labile fractions in the soil profile in an urban agricultural area , 2019, Land Degradation & Development.
[19] Y. Kuzyakov,et al. Carbon input and allocation by rice into paddy soils: A review , 2019, Soil Biology and Biochemistry.
[20] F. Zehetner,et al. Spatial distribution of microbial biomass and residues across soil aggregate fractions at different elevations in the Central Austrian Alps , 2019, Geoderma.
[21] W. D. Kemper,et al. Aggregate Stability and Size Distribution , 2018, SSSA Book Series.
[22] Kelin Wang,et al. Soil organic carbon mineralization with fresh organic substrate and inorganic carbon additions in a red soil is controlled by fungal diversity along a pH gradient , 2018 .
[23] Peifang Wang,et al. Effects of riparian land use changes on soil aggregates and organic carbon , 2018 .
[24] I. Kögel‐Knabner,et al. Microaggregates in soils , 2018 .
[25] M. Crawley,et al. Effects of long-term grassland management on the carbon and nitrogen pools of different soil aggregate fractions. , 2018, The Science of the total environment.
[26] Y. Kuzyakov,et al. Effects of biotic and abiotic factors on soil organic matter mineralization: Experiments and structural modeling analysis , 2018 .
[27] Bingqiang Zhao,et al. Soil labile organic carbon fractions and soil organic carbon stocks as affected by long-term organic and mineral fertilization regimes in the North China Plain , 2018 .
[28] Y. Kuzyakov,et al. Effects of flooding on phosphorus and iron mobilization in highly weathered soils under different land-use types: Short-term effects and mechanisms , 2017 .
[29] Shulan Zhang,et al. Carbon sequestration and mineralization of aggregate-associated carbon in an intensively cultivated Anthrosol in north China as affected by long term fertilization , 2017 .
[30] B. Linquist,et al. Rice yields and water use under alternate wetting and drying irrigation: A meta-analysis , 2017 .
[31] Chengyi Zhao,et al. Variation of soil aggregation and intra-aggregate carbon by long-term fertilization with aggregate formation in a grey desert soil , 2017 .
[32] A. McBratney,et al. Quantification of soil carbon from bulk soil samples to predict the aggregate-carbon fractions within using near- and mid-infrared spectroscopic techniques , 2016 .
[33] D. Murphy,et al. Carbon and Nitrogen Mineralization in Relation to Soil Particle-Size Fractions after 32 Years of Chemical and Manure Application in a Continuous Maize Cropping System , 2016, PloS one.
[34] M. Kleber,et al. The contentious nature of soil organic matter , 2015, Nature.
[35] Huimin Wang,et al. Responses of microbial community structure to land-use conversion and fertilization in southern China , 2015 .
[36] B. Wilson,et al. Aggregate hierarchy and carbon mineralization in two Oxisols of New South Wales, Australia , 2015 .
[37] F. Darboux,et al. Soil aggregation and intra-aggregate carbon fractions in relation to vegetation succession on the Loess Plateau, China , 2015 .
[38] Yan Yin,et al. Dynamics of Soil Organic Carbon Fractions and Aggregates in Vegetable Cropping Systems , 2014 .
[39] D. Guan,et al. Soil aggregates and organic carbon affected by the land use change from rice paddy to vegetable field , 2014 .
[40] Ming-kui Zhang,et al. Effects of land-use conversion from paddy field to orchard farm on soil microbial genetic diversity and community structure , 2014 .
[41] B. Wilson,et al. Soil organic carbon mineralization rates in aggregates under contrasting land uses , 2014 .
[42] J. Rethemeyer,et al. Bioavailability and isotopic composition of CO2 released from incubated soil organic matter fractions , 2014 .
[43] Bernd Schilling,et al. Carbon sequestration potential of soils in southeast Germany derived from stable soil organic carbon saturation , 2014, Global change biology.
[44] Johan Six,et al. Aggregate-associated soil organic matter as an ecosystem property and a measurement tool ☆ , 2014 .
[45] R. Cardelli,et al. Carbon mineralization kinetics in soils under urban environment , 2014 .
[46] Simona M. Hapca,et al. Effects of different soil structures on the decomposition of native and added organic carbon , 2013 .
[47] Rattan Lal,et al. The knowns, known unknowns and unknowns of sequestration of soil organic carbon , 2013 .
[48] Changchun Song,et al. Changes in Labile Organic Carbon Fractions and Soil Enzyme Activities after Marshland Reclamation and Restoration in the Sanjiang Plain in Northeast China , 2012, Environmental Management.
[49] R. Bhattacharyya,et al. Conservation Tillage and Fertilization Impact on Soil Aggregation and Carbon Pools in the Indian Himalayas Under an Irrigated Rice-Wheat Rotation , 2012 .
[50] B. Griffiths,et al. Carbon mineralization kinetics and soil biological characteristics as influenced by manure addition in soil incubated at a range of temperatures , 2011 .
[51] D. Manning,et al. Persistence of soil organic matter as an ecosystem property , 2011, Nature.
[52] C. Creamer,et al. Controls on soil carbon accumulation during woody plant encroachment: Evidence from physical fractionation, soil respiration, and δ13C of respired CO2 , 2011 .
[53] A. Wright,et al. Tillage-induced changes in fungal and bacterial biomass associated with soil aggregates: A long-term field study in a subtropical rice soil in China , 2011 .
[54] Hui Cao,et al. Rice to Vegetables: Short- Versus Long-Term Impact of Land-Use Change on the Indigenous Soil Microbial Community , 2011, Microbial Ecology.
[55] C. Drury,et al. Mineralization of active soil organic carbon in particle size fractions of a Brookston clay soil under no-tillage and mouldboard plough tillage , 2010 .
[56] Sabine Fiedler,et al. Biogeochemistry of paddy soils , 2010 .
[57] R. Lal,et al. Distribution of organic carbon in physical fractions of soils as affected by agricultural management , 2010, Biology and Fertility of Soils.
[58] I. Kögel‐Knabner,et al. Stabilised carbon in subsoil horizons is located in spatially distinct parts of the soil profile , 2009 .
[59] A. K. Srivastva,et al. Long term effects of fertilization on carbon and nitrogen sequestration and aggregate associated carbon and nitrogen in the Indian sub-Himalayas , 2009, Nutrient Cycling in Agroecosystems.
[60] K. Cassman,et al. Chemical stabilization of soil organic nitrogen by phenolic lignin residues in anaerobic agroecosystems , 2006 .
[61] Peikun Jiang,et al. Abundance and Dynamics of Soil Labile Carbon Pools Under Different Types of Forest Vegetation , 2006 .
[62] J. Six,et al. Bacterial and Fungal Contributions to Carbon Sequestration in Agroecosystems , 2006 .
[63] J. Fuhrer,et al. The Temperature Response of CO2 Production from Bulk Soils and Soil Fractions is Related to Soil Organic Matter Quality , 2005 .
[64] J. Six,et al. A history of research on the link between (micro)aggregates, soil biota, and soil organic matter dynamics , 2004 .
[65] Johan Six,et al. Soil macroaggregate turnover and microaggregate formation: a mechanism for C sequestration under no-tillage agriculture , 2000 .
[66] G. Blair,et al. Soil Carbon Fractions Based on their Degree of Oxidation, and the Development of a Carbon Management Index for Agricultural Systems , 1995 .
[67] B. Christensen,et al. Land‐use effects on the composition of organic matter in particle‐size separates of soil: I. Lignin and carbohydrate signature , 1994 .
[68] R. Kachanoski,et al. Carbon mineralization in soil size fractions after various amounts of aggregate disruption , 1989 .
[69] E. T. Elliott. Aggregate structure and carbon, nitrogen, and phosphorus in native and cultivated soils , 1986 .
[70] W. D. Kemper,et al. Gas displacement and aggregate stability of soils , 1985 .
[71] J. Tisdall,et al. Organic matter and water‐stable aggregates in soils , 1982 .
[72] S. J. Smith,et al. Nitrogen Mineralization Potentials of Soils , 1972 .
[73] J. M. Bremner,et al. MICROAGGREGATES IN SOILS1 , 1967 .
[74] K. Shaw. DETERMINATION OF ORGANIC CARBON IN SOIL AND PLANT MATERIAL , 1959 .