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Protection of soil carbon within macro-aggregates depends on intra-aggregate pore characteristics

机译:大型团聚体中土壤碳的保护取决于团聚体内部的孔隙特征

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摘要

Soil contains almost twice as much carbon (C) as the atmosphere and 5–15% of soil C is stored in a form of particulate organic matter (POM). Particulate organic matter C is regarded as one of the most labile components of the soil C, such that can be easily lost under right environmental settings. Conceptually, micro-environmental conditions are understood to be responsible for protection of soil C. However, quantitative knowledge of the specific mechanisms driving micro-environmental effects is still lacking. Here we combined CO2 respiration measurements of intact soil samples with X-ray computed micro-tomography imaging and investigated how micro-environmental conditions, represented by soil pores, influence decomposition of POM. We found that atmosphere-connected soil pores influenced soil C’s, and especially POM’s, decomposition. In presence of such pores losses in POM were 3–15 times higher than in their absence. Moreover, we demonstrated the presence of a feed-forward relationship between soil C decomposition and pore connections that enhance it. Since soil hydrology and soil pores are likely to be affected by future climate changes, our findings indicate that not-accounting for the influence of soil pores can add another sizable source of uncertainty to estimates of future soil C losses.
机译:土壤中的碳(C)几乎是大气中碳的两倍,并且以颗粒有机物(POM)的形式存储了5-15%的土壤C。颗粒状有机物C被视为土壤C的最不稳定成分之一,因此在适当的环境下很容易损失掉。从概念上讲,人们认为微环境条件对土壤C的保护负有责任。但是,仍然缺乏对驱动微环境效应的具体机制的定量认识。在这里,我们将完整土壤样品的CO2呼吸测量结果与X射线计算机断层扫描成像相结合,并研究了以土壤孔隙代表的微环境条件如何影响POM的分解。我们发现与大气相连的土壤孔隙会影响土壤C的分解,尤其是POM的分解。存在这些孔时,POM中的损失比不存在时高3至15倍。此外,我们证明了土壤C分解与增强它的孔隙连接之间存在前馈关系。由于土壤水文学和土壤孔隙很可能会受到未来气候变化的影响,因此我们的发现表明,不考虑土壤孔隙的影响会为未来土壤碳损失的估算增加另一个不确定性来源。

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