Biochar reduced the mineralization of native and added soil organic carbon: evidence of negative priming and enhanced microbial carbon use efficiency

IF 13.1 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Biochar Pub Date : 2024-01-15 DOI:10.1007/s42773-023-00294-y
Subin Kalu, Aino Seppänen, Kevin Z. Mganga, Outi-Maaria Sietiö, Bruno Glaser, Kristiina Karhu
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Abstract

Biochar has been widely recognized for its potential to increase carbon (C) sequestration and mitigate climate change. This potential is affected by how biochar interacts with native soil organic carbon (SOC) and fresh organic substrates added to soil. However, only a few studies have been conducted to understand this interaction. To fill this knowledge gap, we conducted a 13C-glucose labelling soil incubation for 6 months using fine-textured agricultural soil (Stagnosol) with two different biochar amounts. Biochar addition reduced the mineralization of SOC and 13C-glucose and increased soil microbial biomass carbon (MBC) and microbial carbon use efficiency (CUE). The effects were found to be additive i.e., higher biochar application rate resulted in lower mineralization of SOC and 13C-glucose. Additionally, soil density fractionation after 6 months revealed that most of the added biochar particles were recovered in free particulate organic matter (POM) fraction. Biochar also increased the retention of 13C in free POM fraction, indicating that added 13C-glucose was preserved within the biochar particles. The measurement of 13C from the total amino sugar fraction extracted from the biochar particles suggested that biochar increased the microbial uptake of added 13C-glucose and after they died, the dead microbial residues (necromass) accumulated inside biochar pores. Biochar also increased the proportion of occluded POM, demonstrating that increased soil occlusion following biochar addition reduced SOC mineralization. Overall, the study demonstrates the additional C sequestering potential of biochar by inducing negative priming of native SOC as well as increasing CUE, resulting in the formation and stabilization of microbial necromass.

Graphical Abstract

Abstract Image

生物炭降低了原生和添加的土壤有机碳的矿化度:负引力和微生物碳利用效率提高的证据
生物炭在增加碳(C)固存和减缓气候变化方面的潜力已得到广泛认可。这种潜力受到生物炭与原生土壤有机碳 (SOC) 和添加到土壤中的新鲜有机基质之间相互作用的影响。然而,目前只有少数研究了解这种相互作用。为了填补这一知识空白,我们使用质地细腻的农用土壤(Stagnosol)和两种不同生物炭用量的土壤,进行了为期 6 个月的 13C 葡萄糖标记土壤培养。生物炭的添加降低了 SOC 和 13C 葡萄糖的矿化度,提高了土壤微生物生物量碳(MBC)和微生物碳利用效率(CUE)。研究发现这些影响是相加的,即生物炭施用量越高,SOC 和 13C 葡萄糖的矿化度越低。此外,6 个月后的土壤密度分馏显示,大部分添加的生物炭颗粒在游离的颗粒有机物(POM)部分被回收。生物炭还提高了 13C 在游离 POM 部分的保留率,这表明添加的 13C 葡萄糖保存在生物炭颗粒中。从生物炭颗粒中提取的总氨基酸糖部分的 13C 测量结果表明,生物炭增加了微生物对添加的 13C 葡萄糖的吸收,在微生物死亡后,死亡的微生物残留物(坏死物质)在生物炭孔隙中积累。生物炭还增加了闭塞 POM 的比例,表明添加生物炭后土壤闭塞的增加降低了 SOC 矿化。总之,该研究通过诱导原生 SOC 的负引力以及增加 CUE,导致微生物残体的形成和稳定,证明了生物炭具有额外的固碳潜力。
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来源期刊
Biochar
Biochar Multiple-
CiteScore
18.60
自引率
10.20%
发文量
61
期刊介绍: Biochar stands as a distinguished academic journal delving into multidisciplinary subjects such as agronomy, environmental science, and materials science. Its pages showcase innovative articles spanning the preparation and processing of biochar, exploring its diverse applications, including but not limited to bioenergy production, biochar-based materials for environmental use, soil enhancement, climate change mitigation, contaminated-environment remediation, water purification, new analytical techniques, life cycle assessment, and crucially, rural and regional development. Biochar publishes various article types, including reviews, original research, rapid reports, commentaries, and perspectives, with the overarching goal of reporting significant research achievements, critical reviews fostering a deeper mechanistic understanding of the science, and facilitating academic exchange to drive scientific and technological development.
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