Soil organic carbon sequestration in agricultural long-term field experiments as derived from particulate and mineral-associated organic matter

被引:10
|
作者
Just, Christopher [1 ]
Armbruster, Martin [2 ]
Barkusky, Dietmar [3 ]
Baumecker, Michael [4 ]
Diepolder, Michael [5 ]
Doering, Thomas F. [6 ]
Heigl, Lorenz [5 ]
Honermeier, Bernd [7 ]
Jate, Melkamu [8 ]
Merbach, Ines [9 ]
Rusch, Constanze [10 ]
Schubert, David [5 ]
Schulz, Franz [11 ,12 ]
Schweitzer, Kathlin [4 ]
Seidel, Sabine [6 ]
Sommer, Michael [3 ]
Spiegel, Heide [13 ]
Thumm, Ulrich [14 ]
Urbatzka, Peer [15 ]
Zimmer, Joerg [16 ]
Koegel-Knabner, Ingrid [1 ,17 ]
Wiesmeier, Martin [1 ,18 ]
机构
[1] Tech Univ Munich, TUM Sch Life Sci Weihenstephan, Soil Sci, Freising Weihenstephan, Germany
[2] Agr Invest & Res Ctr LUFA Speyer, Speyer, Germany
[3] Leibniz Ctr Agr Landscape Res ZALF, Landscape Pedol Working Grp, Muencheberg, Germany
[4] Albrecht Daniel Thaer Inst Agrar & Gartenbauwisse, Berlin, Germany
[5] Inst Agroecol & Organ Farming, Bavarian Res Ctr Agr, Freising Weihenstephan, Germany
[6] Univ Bonn, Inst Crop Sci & Resource Conservat, Bonn, Germany
[7] Justus Liebig Univ Giessen, iFZ Res Ctr Biosyst Land Use & Nutr, Agron & Crop Physiol, Giessen, Germany
[8] Yara Int ASA, Res Ctr Hanninghof, Duelmen, Germany
[9] UFZ Helmholtz Ctr Environm Res, Expt Stn Bad Lauchstadt, Dep Community Ecol, Leipzig, Germany
[10] Ctr Agron & Crop Prod, State Inst Agr & Hort Saxony Anhalt, Bernburg, Germany
[11] Justus Liebig Univ Giessen, Dept Agron & Plant Breeding 2, Organ Farming Focus Sustainable Soil Use, Giessen, Germany
[12] Univ Bonn, Inst Crop Sci & Resource Conservat INRES, Bonn, Germany
[13] Austrian Agcy Hlth & Food Safety, Dept Soil Hlth & Plant Nutr, Vienna, Austria
[14] Univ Hohenheim, Inst Crop Sci, Dept Biobased Resources Bioecon, Stuttgart, Germany
[15] Inst Organ Farming, Bavarian Res Ctr Agr, Freising Weihenstephan, Germany
[16] Brandenburg State Off Rural Dev Agr & Land Consol, Frankfurt, Oder, Germany
[17] Tech Univ Munich, Inst Adv Study, Garching, Germany
[18] Inst Organ Farming Soil & Resource Management, Bavarian Res Ctr Agr, Freising Weihenstephan, Germany
关键词
Fractionation; Mixed-effects modeling; Fertilization; Crop rotation; POM; -C; MAOM-C ratio indicator; NET PRIMARY PRODUCTIVITY; STABILIZATION MECHANISMS; INPUTS; SATURATION; ROOT; RHIZODEPOSITION; FRACTIONS; GERMANY; BIOMASS; TRENDS;
D O I
10.1016/j.geoderma.2023.116472
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Soil organic matter (SOM) is indispensable for soil health and, in the context of climate change, is considered a significant CO2 sink. Improving agricultural management to increase long-term soil organic carbon (SOC) stocks for mitigating climate change requires tools that estimate short and long-cycling SOM pools. In this study, we analyzed changes in fast-cycling particulate organic matter (POM) and slow-cycling mineral-associated organic matter (MAOM) induced by common management practices, i.e., fertilization and crop rotation in topsoils from 25 Central European long-term field experiments. When relating MAOM-C contents to recent MAOM-C saturation levels, estimated sequestration potentials were only met in coarse-textured soils under appropriate agricultural management or fine-textured soils under extreme organic fertilization. Soil texture, organic fertilization, and below-ground OC inputs through root exudates and root biomass were decisive for estimating MAOM-C, allowing for calibration of a mixed-effects model (Nakagawa's: marginal R2m = 0.6, conditional R2 c = 0.89). While the models containing soil texture and organic fertilization parameters can be validated and generalized (R2 = 0.43), the below-ground OC input predictor substantially decreases the generalizability of the validated models (R2 = 0.14). According to quantile regression models, we estimate the average difference in MAOM-C concentration between well-managed and control site (without organic fertilization) topsoils to 4.1 mg g-1 soil. In dependence on the soil bulk density, this amounts to 1.38 - 1.84 t ha-1 MAOM-C stocks or 5.06 - 10.1 t ha-1 CO2-equivalents. POM-C was difficult to predict (R2 = 0.28), presumably due to strong POM dynamics. The POM-C / MAOM-C ratio can inform on the effects of agricultural practices in before/after management change comparisons. Under increasing SOC concentration, an increasing POM-C / MAOM-C ratio indicates that the effects of organic fertilization do not transfer to real effects on long-term SOC sequestration. Because MAOM-C depends on soil texture, this ratio is also a covariate of soil texture, limiting it for comparisons between sites with different textures. However, our data indicate that agricultural long-term field experiment soils constantly approximate MAOM-C saturation when the POM-C/MAOM-C ratio is >0.35. This ratio might be used as a management goal to prevent organic over-fertilization and N loss, especially on coarse-textured soils. Thereby, the POM-C / MAOM-C ratio can help to optimize SOC management and sequestration on agricultural soils and support climate change mitigation strategies in Central Europe.
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页数:13
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