Impacts of temperature and soil characteristics on methane production and oxidation in Arctic tundra

永久冻土 冻土带 土壤水分 环境科学 热岩溶 产甲烷 甲烷 初级生产 土壤碳 土壤科学 北极的 甲烷厌氧氧化 生态系统 土壤有机质 环境化学 化学 生态学 地质学 海洋学 生物 有机化学
作者
Jianqiu Zheng,Taniya Roy Chowdhury,Ziming Yang,Baohua Gu,Stan D. Wullschleger,David E. Graham
出处
期刊:Biogeosciences 卷期号:15 (21): 6621-6635 被引量:37
标识
DOI:10.5194/bg-15-6621-2018
摘要

Abstract. Rapid warming of Arctic ecosystems accelerates microbial decomposition of soil organic matter and leads to increased production of carbon dioxide (CO2) and methane (CH4). CH4 oxidation potentially mitigates CH4 emissions from permafrost regions, but it is still highly uncertain whether soils in high-latitude ecosystems will function as a net source or sink for CH4 in response to rising temperature and associated hydrological changes. We investigated CH4 production and oxidation potential in permafrost-affected soils from degraded ice-wedge polygons on the Barrow Environmental Observatory, Utqiaġvik (Barrow), Alaska, USA. Frozen soil cores from flat and high-centered polygons were sectioned into organic, transitional, and permafrost layers, and incubated at −2, +4 and +8 ∘C to determine potential CH4 production and oxidation rates. Significant CH4 production was only observed from the suboxic transition layer and permafrost of flat-centered polygon soil. These two soil sections also exhibited highest CH4 oxidation potentials. Organic soils from relatively dry surface layers had the lowest CH4 oxidation potential compared to saturated transition layer and permafrost, contradicting our original assumptions. Low methanogenesis rates are due to low overall microbial activities measured as total anaerobic respiration and the competing iron-reduction process. Our results suggest that CH4 oxidation could offset CH4 production and limit surface CH4 emissions, in response to elevated temperature, and thus must be considered in model predictions of net CH4 fluxes in Arctic polygonal tundra. Future changes in temperature and soil saturation conditions are likely to divert electron flow to alternative electron acceptors and significantly alter CH4 production, which should also be considered in CH4 models.
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