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[农业土壤氧化亚氮排放中的关键微生物过程及缓解策略]

[Key microbial processes in nitrous oxide emissions of agricultural soil and mitigation strategies].

作者信息

Zhu Yong-Guan, Wang Xiao-Hui, Yang Xiao-Ru, Xu Hui-Juan, Jia Yan

出版信息

Huan Jing Ke Xue. 2014 Feb;35(2):792-800.

Abstract

Nitrous oxide (N2O) is a powerful atmospheric greenhouse gas, which does not only have a strong influence on the global climate change but also depletes the ozone layer and induces the enhancement of ultraviolet radiation to ground surface, so numerous researches have been focused on global climate change and ecological environmental change. Soil is the foremost source of N2O emissions to the atmosphere, and approximately two-thirds of these emissions are generally attributed to microbiological processes including bacterial and fungal denitrification and nitrification processes, largely as a result of the application of nitrogenous fertilizers. Here the available knowledge concerning the research progress in N2O production in agricultural soils was reviewed, including denitrification, nitrification, nitrifier denitrification and dissimilatory nitrate reduction to ammonium, and the abiotic (including soil pH, organic and inorganic nitrogen, organic matter, soil humidity and temperature) and biotic factors that have direct and indirect effects on N2O fluxes from agricultural soils were also summarized. In addition, the strategies for mitigating N2O emissions and the future research direction were proposed. Therefore, these studies are expected to provide valuable and scientific evidence for the study on mitigation strategies for the emission of greenhouse gases, adjustment of nitrogen transformation processes and enhancement of nitrogen use efficiency.

摘要

一氧化二氮(N₂O)是一种强大的大气温室气体,它不仅对全球气候变化有强烈影响,还会消耗臭氧层并导致地面紫外线辐射增强,因此众多研究聚焦于全球气候变化和生态环境变化。土壤是大气中N₂O排放的首要来源,这些排放中约三分之二通常归因于微生物过程,包括细菌和真菌的反硝化作用以及硝化作用过程,这在很大程度上是由于氮肥的施用。本文综述了有关农业土壤中N₂O产生的研究进展,包括反硝化作用、硝化作用、硝化细菌反硝化作用和异化硝酸盐还原为铵,还总结了对农业土壤N₂O通量有直接和间接影响的非生物(包括土壤pH值、有机和无机氮、有机质、土壤湿度和温度)和生物因素。此外,还提出了减少N₂O排放的策略和未来研究方向。因此,这些研究有望为温室气体排放减排策略研究、氮转化过程调控以及提高氮利用效率提供有价值的科学依据。

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