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The effect of rice straw on the priming of soil organic matter and methane production in peat soils

机译:稻草对泥炭土壤中有机质引发和甲烷产生的影响

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Rice residue management often leads to increased methane (CH4) emissions but the outcomes of edaphic and management factors are not always predictable. Rice residue can act as a substrate for CH4 production; however the role it plays in priming (mineralization) of soil organic matter (SUM) to release additional substrates for CH4 production are not well established. We anaerobically incubated a highly organic soil with C-13-enriched rice straw for 3 months to investigate its priming effect (PE) on SUM and source of C for CH4 production. Anaerobic decomposition of SUM was accompanied by iron (Fe) reduction with minimal CH4 production when straw was absent. Straw addition enhanced Fe reduction and increased CH4 production concurrently with a clear succession of microbial community structure and function assessed with phospholipid fatty acid (PLFA) profiling. The PE on CH4 production from SUM was strong and positive during the entire experiment. Overall, PE on SUM (CO2 plus CH4 production) was slightly positive at the end of the experiment, associated with only a 32% mineralization of the added straw-C (as CO2 plus CH4). Straw addition also released large amounts of dissolved organic carbon (DOC) from SOM. Our results suggest that straw addition effects on PE of SUM and CH4 production can last for a long period of time showing that straw will cause non-linear response in CH4 production and potentially result in significant losses of soil C as DOC by leaching or direct exports in histosols. (C) 2014 Elsevier Ltd. All rights reserved.
机译:稻米残留物管理通常会导致甲烷(CH4)排放量增加,但营养和管理因素的结果并非总是可预测的。大米残留物可以作为CH4生产的底物;然而,它在土壤有机质(SUM)的引发(矿化)中释放出额外的底物以生产CH4的作用尚不清楚。我们将高度有机的土壤与富含C-13的稻草厌氧孵育了3个月,以研究其对SUM的引发作用(PE)和产生CH4的C来源。 SUM的厌氧分解伴随着铁(Fe)的还原,当不存在稻草时,CH4的生成量最小。秸秆的添加增强了铁的还原,并增加了CH4的产生,同时通过磷脂脂肪酸(PLFA)分析评估了微生物群落的结构和功能。在整个实验过程中,来自SUM的CH4生成的PE都很强。总体而言,在实验结束时,PE的SUM(CO2加CH4产生)略为阳性,这与添加的秸秆C的32%矿化(CO2加CH4)有关。秸秆还可以从SOM中释放出大量溶解的有机碳(DOC)。我们的结果表明,秸秆添加对SUM和CH4生产的PE的影响可以持续很长时间,这表明秸秆将导致CH4生产中的非线性响应,并可能通过淋滤或直接出口而导致土壤中的DOC作为DOC大量损失在组织溶胶中。 (C)2014 Elsevier Ltd.保留所有权利。

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