Organic fertilizer substitution increased soil organic carbon through the association of microbial necromass C with iron oxides

Yinan Xu, Jing Sheng, Liping Zhang, Guofeng Sun, Jianchu Zheng
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Abstract

Organic fertilizer was widely used to enhance the buildup of soil organic carbon (SOC) and microbial necromass C. Iron and aluminum (Fe/Al) oxides serve as critical factors influencing SOC by controlling microbial necromass C. Nevertheless, the alterations and dynamics of microbial necromass C alongside Fe/Al oxides in the presence of organic fertilizer remain poorly elucidated. To evaluate the effect of organic fertilizer substitution for chemical fertilizer on Fe/Al oxides and its relationship to microbial necromass C, a site experiment was initiated in 2010 including three treatments: chemical fertilizer (CF), 50 %CF+ 50 % organic fertilizer (50 % OF), and 100 % organic fertilizer (100 %OF). The data were collected after 4, 8, and 13 years of experiments in 2014, 2018, and 2023, respectively. The results showed that organic fertilizer substitution decreased C loss from microbial mineralization and increased microbial necromass C, and thus contributed to SOC accumulation. With experiment duration, SOC content did not increase from 2018 to 2023 under 100 %OF may be due to C saturation, while microbial necromass still had an increasing trend. In 2023, bacterial and fungal necromass C was increased by 157.4 % and 178.5 % under 50 %OF, and by 230.7 % and 337.8 % under 100 %OF compared with CF, respectively. This suggests that prolonged use of organic fertilizer can enhance the stable SOC. Organic fertilizer increased microbial necromass C mainly through promoting the formation of Fe/Al oxides, and Fe oxides had a more important effect than Al oxides. Overall, we concluded that organic fertilizer substitution increased stable SOC sequestration through the association of microbial necromass C with iron oxides.
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有机肥替代通过微生物坏死体C与氧化铁的关联增加了土壤有机碳
有机肥被广泛用于提高土壤有机碳(SOC)和微生物坏死物C的积累。铁和铝(Fe/Al)氧化物通过控制微生物坏死物C而成为影响土壤有机碳(SOC)的关键因素。然而,有机肥存在下微生物坏死物C随Fe/Al氧化物的变化和动态尚不清楚。为评价有机肥替代化肥对Fe/Al氧化物的影响及其与微生物死亡菌群C的关系,于2010年开展了化肥、50% %CF+ 50 %有机肥(50 % of)和100% %有机肥(100 % of) 3种处理的现场试验。这些数据是在2014年、2018年和2023年分别进行了4年、8年和13年的实验后收集的。结果表明,有机肥替代减少了微生物矿化造成的碳损失,增加了微生物坏死团C,从而促进了有机碳的积累。随着试验时间的延长,2018 - 2023年土壤有机碳含量在100 %OF下没有增加,可能是由于碳饱和,而微生物坏死块仍有增加的趋势。2023年,与CF相比,在50 %OF下,细菌和真菌坏死团C分别增加了157.4 %和178.5 %;在100 %OF下,细菌和真菌坏死团C分别增加了230.7 %和337.8 %。说明长期施用有机肥可以提高土壤的稳定有机碳。有机肥增加微生物坏死团C主要是通过促进Fe/Al氧化物的形成,且Fe氧化物的作用比Al氧化物更重要。总的来说,我们得出结论,有机肥替代通过微生物坏死团C与氧化铁的关联增加了稳定的有机碳固存。
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