Nitrogen‐rich microbial products provide new organo‐mineral associations for the stabilization of soil organic matter

变性土 矿化(土壤科学) 淋溶 土壤水分 环境化学 有机质 化学 高岭石 土壤有机质 吸附 粘土矿物 土壤肥力 矿物学 土壤科学 环境科学 有机化学 吸附
作者
Peter M. Kopittke,Maria C. Hernandez‐Soriano,Ram C. Dalal,Damien Finn,Neal W. Menzies,Carmen Hoeschen,Carsten W. Mueller
出处
期刊:Global Change Biology [Wiley]
卷期号:24 (4): 1762-1770 被引量:115
标识
DOI:10.1111/gcb.14009
摘要

Abstract Understanding the cycling of C and N in soils is important for maintaining soil fertility while also decreasing greenhouse gas emissions, but much remains unknown about how organic matter ( OM ) is stabilized in soils. We used nano‐scale secondary ion mass spectrometry (Nano SIMS ) to investigate the changes in C and N in a Vertisol and an Alfisol incubated for 365 days with 13 C and 15 N pulse labeled lucerne ( Medicago sativa L.) to discriminate new inputs of OM from the existing soil OM . We found that almost all OM within the free stable microaggregates of the soil was associated with mineral particles, emphasizing the importance of organo‐mineral interactions for the stabilization of C. Of particular importance, it was also found that 15 N‐rich microbial products originating from decomposition often sorbed directly to mineral surfaces not previously associated with OM . Thus, we have shown that N‐rich microbial products preferentially attach to distinct areas of mineral surfaces compared to C‐dominated moieties, demonstrating the ability of soils to store additional OM in newly formed organo‐mineral associations on previously OM ‐free mineral surfaces. Furthermore, differences in 15 N enrichment were observed between the Vertisol and Alfisol presumably due to differences in mineralogy (smectite‐dominated compared to kaolinite‐dominated), demonstrating the importance of mineralogy in regulating the sorption of microbial products. Overall, our findings have important implications for the fundamental understanding of OM cycling in soils, including the immobilization and storage of N‐rich compounds derived from microbial decomposition and subsequent N mineralization to sustain plant growth.
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