冻土带
土壤水分
永久冻土
环境化学
生物地球化学循环
氧化还原
土壤科学
环境科学
化学
生态学
北极的
无机化学
生物
作者
Erin Rooney,Erin VanderJeugdt,Sumant Avasarala,Imtiaz Miah,Matthew Berens,Lauren Kinsman‐Costello,Michael Weintraub,Elizabeth Herndon
标识
DOI:10.1038/s43247-024-01927-1
摘要
Permafrost thaw in warming Arctic landscapes alters hydrology and saturation-driven biogeochemical processes. Models assume that aerobic respiration occurs in drained soils while saturated soils support methanogenesis; however, saturated soils maintain redox gradients that host a range of anaerobic metabolisms. We evaluated how redox potential and redox-active solutes vary with soil moisture in the active layer of permafrost-affected acidic and non-acidic tundra hillslopes. Oxidizing conditions persisted in highly permeable organic horizons of both unsaturated tussock tundra and saturated wet sedge meadows. Redox potential decreased with depth in all soils as increasing soil bulk density restricted groundwater flow and oxygen diffusion. High concentrations of dissolved iron, phosphate, and organic carbon coincided with redox boundaries below the soil surface in acidic tundra, indicating active iron redox cycling and potential release of adsorbed phosphate during iron (oxyhydr)oxide dissolution. In non-acidic tundra, weatherable minerals affected nutrient dynamics more than redox-driven iron cycling, especially in low-lying, saturated areas where thaw reached mineral soils. The role of thaw depth and the ability of saturated soils to maintain oxidizing conditions in organic surface layers highlight the importance of soil physical properties and hydrology in predicting biogeochemical processes and greenhouse gas emissions. Redox potential and the cycling of redox-active solutes are decoupled from soil moisture in the active layer of permafrost-affected areas, according to a field study conducted in the tundra areas of Alaska's North Slope.
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