生物炭
土壤碳
环境科学
环境化学
自行车
碳纤维
碳循环
地球科学
土壤科学
土壤水分
化学
林业
生态学
地质学
材料科学
生态系统
地理
热解
生物
复合数
复合材料
有机化学
作者
Haohua He,Jie Liu,Zhipeng Shu,Yalan Chen,Zezhen Pan,Chao Peng,Xingxing Wang,Fengwu Zhou,Ming Zhou,Zhangliu Du,Ke Sun,Baoshan Xing,Zimeng Wang
出处
期刊:Research Square - Research Square
日期:2024-03-08
标识
DOI:10.21203/rs.3.rs-4011020/v1
摘要
Abstract Soil organic carbon (SOC) is pivotal for both agricultural activities and climate change mitigation, and biochar stands as a promising tool for bolstering SOC and curtailing soil carbon dioxide (CO2) emissions. However, the involvements of biochar in SOC dynamics and the underlying interactions between biochar, soil microbes, minerals (notably Fe oxides), and fresh organic matter (FOM, such as plant debris) remain largely unknown, especially in agricultural soils after long-term biochar amendment. We therefore introduced FOM to soils with and without a decade-long history of biochar amendment, performed soil microcosm incubations, and evaluated carbon and iron cycling as well as microbial properties. Biochar amendment resulted in 2-fold SOC accrual over a decade and attenuated FOM-induced CO2 emissions by approximately 11% during a 56-day incubation through diverse pathways. Notably, biochar facilitated microbially driven iron reduction and subsequent Fenton-like reactions, potentially having enhanced microbial extracellular electron transfer and the carbon utilization efficiency in the long run. Throughout iron cycling processes, physico-chemical protection by minerals could contribute to both microbial carbon accumulation and plant debris preservation, alongside direct adsorption and occlusion of SOC by biochar particles. Furthermore, soil slurry experiments, with sterilization and ferrous iron stimulation controls, confirmed the role of microbes in hydroxyl radical generation and biotic carbon sequestration in biochar-amended soils. Overall, our study sheds light on the intricate biotic and abiotic mechanisms governing carbon dynamics in long-term biochar-amended upland soils.
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