Oxygen-nanobubble-loaded biochar increases soil carbon sequestration in rice paddies

Yiyu Lan , Qingnan Chu , Xiangyu Liu , Shuhan Xu , Detian Li , Chengming Zhang , Ping He , Xianwen Feng , Hanlin Zhang , Zhimin Sha
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Abstract

Enhancing soil carbon sequestration in flooded agroecosystems is critical for promoting soil health, improving crop productivity, and mitigating climate change. This study evaluated the role of oxygen nanobubble (ONB)-loaded biochar, an emerging oxygenation and carbon management tool, in modulating soil organic carbon (SOC) dynamics and microbial activity in rice paddy soil. A pot experiment was conducted with treatments involving biochar, ONB-loaded biochar, and iron plaque induction. The results show that ONB-loaded biochar increased SOC by 11–19% compared to the control group. This enhancement was attributed to two primary mechanisms: (1) suppression of hydrolase activity, including β-glucosidase and acid phosphatase, resulting in reduced decomposition of labile organic matter; and (2) increased oxidase activity, which facilitated the oxidation of phenolic compounds and promoted the formation of recalcitrant C-Fe complexes. Additionally, enzyme stoichiometry and vector analysis revealed stronger microbial carbon limitation and phosphorus limitation in ONB-loaded biochar treatments, particularly during the tillering and maturing stages. The formation of Fe plaques on the roots further modulated these effects by altering redox conditions and nutrient availability. These findings highlight ONB-loaded biochar as a sustainable soil amendment to strengthen long-term SOC storage, modulate microbial nutrient dynamics, and enhance soil biogeochemical functions in rice agroecosystems. This approach offers promising implications for advancing climate-smart and environmentally sound soil management strategies.

Abstract Image

载氧纳米气泡生物炭增加稻田土壤固碳
加强洪涝农业生态系统的土壤固碳对于促进土壤健康、提高作物生产力和减缓气候变化至关重要。研究了氧纳米泡(ONB)负载生物炭对水稻土壤有机碳(SOC)动态和微生物活性的调节作用。进行了生物炭、onb负载生物炭和铁斑块诱导处理的盆栽试验。结果表明,与对照组相比,添加onb的生物炭使土壤有机碳含量提高了11-19%。这种增强归因于两个主要机制:(1)水解酶活性受到抑制,包括β-葡萄糖苷酶和酸性磷酸酶,导致不稳定有机物的分解减少;(2)增加了氧化酶活性,促进了酚类化合物的氧化,促进了顽固性C-Fe络合物的形成。此外,酶化学计量和载体分析表明,onb负载生物炭处理的微生物碳限制和磷限制更强,特别是在分蘖期和成熟期。根上铁斑块的形成通过改变氧化还原条件和养分有效性进一步调节了这些影响。这些研究结果表明,onb生物炭作为一种可持续的土壤改质剂,在水稻农业生态系统中具有增强土壤有机碳长期储存、调节微生物养分动态和增强土壤生物地球化学功能的作用。这种方法为推进气候智慧型和环境无害化土壤管理战略提供了有希望的启示。
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