微塑料
环境科学
环境化学
土壤呼吸
土壤有机质
土壤水分
矿化(土壤科学)
土壤碳
二氧化碳
放线菌门
土壤生物学
碳循环
有机质
营养物
农学
溶解有机碳
污染
生态学
碳纤维
营养循环
生态系统
自行车
污染物
总有机碳
土工试验
微生物
土壤分类
化学
孵化
固碳
土壤科学
氮气循环
氮气
作者
Jingwen Mei,Xinyi Hu,Hao Shu,Yanxia Zhang,Shengwen Xu,Kai Wang,Lihu Liu,Yuyi Yang,Hongtao Jia,Yongxiang Yu,Huaiying YAO
标识
DOI:10.1016/j.apsoil.2026.106897
摘要
Microplastics have been reported to promote soil respiration in controlled experimental settings; however, the relationship between historically accumulated microplastics and soil carbon dioxide (CO 2 ) dynamics remains unclear. In this study, 67 soil samples were collected from agricultural fields under plastic film mulching, and an incubation experiment was conducted across a temperature gradient to quantify soil CO 2 emissions and their temperature sensitivity (Q 10 ). Soil microplastic abundance, chemical properties, and microbial parameters were also measured. Microplastic abundance ranged from 0.4 × 10 4 to 4.7 × 10 4 pieces kg −1 dry soil, with corresponding mass contents of 0.9–43.4 mg kg −1 dry soil. Due to the relatively low level of microplastic accumulation observed, no significant correlations were observed between historically accumulated microplastic concentrations (expressed either as particle count or mass) and soil CO 2 emissions or Q 10 values. Instead, Actinobacteria appeared to be a primary regulator of both CO 2 emissions and their thermal adaptation, whereas soil organic matter and the carbon to nitrogen ratio acted as secondary factors influencing CO 2 emissions and Q 10 , respectively. Redundancy analysis indicated a positive relationship between microplastics abundance/content and Actinobacteria , suggesting that field-realistic microplastic pollution may indirectly regulate soil carbon dynamics through its influence on Actinobacteria . Overall, our findings reveal no significant relationships between microplastics and soil CO 2 dynamics, implying that the ecological risks of historically accumulated microplastics in soil carbon cycling require further investigation.
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