Effects of freeze-thaw cycles on soil greenhouse gas emissions: A systematic review

温室气体 环境科学 FTCS计划 生物地球化学循环 土壤碳 生态系统 环境化学 背景(考古学) 全球变暖 碳循环 固碳 土壤水分 土壤科学 气候变化 二氧化碳 化学 生态学 生物 微分代数方程 常微分方程 古生物学 物理 量子力学 微分方程
作者
Yuqing Liu,Xiaochu Wang,Yujuan Wen,Haoxuan Cai,Xiaoming Song,Zhipeng Zhang
出处
期刊:Environmental Research [Elsevier BV]
卷期号:248: 118386-118386 被引量:19
标识
DOI:10.1016/j.envres.2024.118386
摘要

In the context of global warming, increasingly widespread and frequent freezing and thawing cycles (FTCs) will have profound effects on the biogeochemical cycling of soil carbon and nitrogen. FTCs can increase soil greenhouse gas (GHG) emissions by reducing the stability of soil aggregates, promoting the release of dissolved organic carbon, decreasing the number of microorganisms, inducing cell rupture, and releasing carbon and nitrogen nutrients for use by surviving microorganisms. However, the similarity and disparity of the mechanisms potentially contributing to changes in GHGs have not been systematically evaluated. The present study consolidates the most recent findings on the dynamics of soil carbon and nitrogen, as well as GHGs, in relation to FTCs. Additionally, it analyzes the impact of FTCs on soil GHGs in a systematic manner. In this study, particular emphasis is given to the following: (i) the reaction mechanism involved; (ii) variations in soil composition in different types of land (e.g., forest, peatland, farmland, and grassland); (iii) changes in soil structure in response to cycles of freezing temperatures; (iv) alterations in microbial biomass and community structure that may provide further insight into the fluctuations in GHGs after FTCs. The challenges identified included the extension of laboratory-scale research to ecosystem scales, the performance of in-depth investigation of the coupled effects of carbon, nitrogen, and water in the freeze-thaw process, and analysis of the effects of FTCs through the use of integrated research tools. The results of this study can provide a valuable point of reference for future experimental designs and scientific investigations and can also assist in the analysis of the attributes of GHG emissions from soil and the ecological consequences of the factors that influence these emissions in the context of global permafrost warming.
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