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Dissolved carbon flow to particulate organic carbon enhances soil carbon sequestration

固碳 碳纤维 土壤碳 溶解有机碳 环境科学 土壤有机质 环境化学 总有机碳 生物量(生态学) 土壤水分 土壤科学 化学 二氧化碳 农学 材料科学 生物 有机化学 复合数 复合材料
作者
Qintana Si,Kangli Chen,Wei Bin,Yaowen Zhang,Xun Sun,Junyi Liang
出处
期刊:Soil [Copernicus GmbH]
卷期号:10 (2): 441-450 被引量:15
标识
DOI:10.5194/soil-10-441-2024
摘要

Abstract. Particulate organic carbon (POC) and mineral-associated organic carbon (MAOC), which are two primary components of the soil carbon (C) reservoir, have different physical and chemical properties as well as biochemical turnover rates. Microbial necromass entombment is a primary mechanism for MAOC formation from fast-decaying plant substrates, whereas POC is typically considered the product of structural litter via physical fragmentation. However, emerging evidence shows that microbial by-products derived from labile C substrates can enter the POC pool. To date, it is still unclear to what extent dissolved C can enter the POC pool and how it affects the subsequent long-term soil organic carbon (SOC) storage. Our study here, through a 13C-labeling experiment in 10 soils from 5 grassland sites as well as a modeling analysis, showed that up to 12.29 % of isotope-labeled glucose C (i.e., dissolved C) was detected in the POC pool. In addition, the glucose-derived POC was correlated with 13C-MBC (microbial biomass carbon) and the fraction of clay and silt, suggesting that the flow of dissolved C to POC is dependent on interactions between soil physical and microbial processes. The modeling analysis showed that ignoring the C flow from MBC to POC significantly underestimated soil C sequestration by up to 53.52 % across the 10 soils. The results emphasize that the soil mineral-regulated microbial process, besides the plant structural residues, is a significant contributor to POC, acting as a vital component in SOC dynamics.
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