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Reorganization of vegetation, hydrology and soil carbon after permafrost degradation across heterogeneous boreal landscapes

Bibliographic Data

ID15548546
AuthorsM Torre Jorgenson (0000-0002-9834-8851, corresponding author), J W Harden (0000-0002-6570-8259, United States Geological Survey), Jennifer Harden, Mikhail Kanevskiy (0000-0003-0565-0187, University of Alaska Fairbanks), Jonathan O’donnell, Jonathan A O’Donnell (0000-0001-7031-9808, National Park Service), Kimberly P Wickland (0000-0002-6400-0590, United States Geological Survey), Kim Wickland, S A Ewing (0000-0003-0713-4266, Montana State University), Stephanie Ewing, Kristen Manies (0000-0003-4941-9657, United States Geological Survey), Qianlai Zhuang (0000-0002-4536-9851, Purdue University West Lafayette), Yuri Shur (University of Alaska Fairbanks), Robert G Striegl (0000-0002-8251-4659, United States Geological Survey), Robert Striegl, Joshua C Koch (0000-0001-7180-6982, United States Geological Survey), Josh Koch
Year2013
Volume8
Issue3
Pages035017-035017
Publication date2013-07-16
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/8/3/035017
OpenAlexW2096668295
LanguageEN
Citations received20
References cited53

The diversity of ecosystems across boreal landscapes, successional changes after disturbance and complicated permafrost histories, present enormous challenges for assessing how vegetation, water and soil carbon may respond to climate change in boreal regions. To address this complexity, we used a chronosequence approach to assess changes in vegetation composition, water storage and soil organic carbon (SOC) stocks along successional gradients within four landscapes: (1) rocky uplands on ice-poor hillside colluvium, (2) silty uplands on extremely ice-rich loess, (3) gravelly–sandy lowlands on ice-poor eolian sand and (4) peaty–silty lowlands on thick ice-rich peat deposits over reworked lowland loess. In rocky uplands, after fire permafrost thawed rapidly due to low ice contents, soils became well drained and SOC stocks decreased slightly. In silty uplands, after fire permafrost persisted, soils remained saturated and SOC decreased slightly. In gravelly–sandy lowlands where permafrost persisted in drier forest soils, loss of deeper permafrost around lakes has allowed recent widespread drainage of lakes that has exposed limnic material with high SOC to aerobic decomposition. In peaty–silty lowlands, 2–4 m of thaw settlement led to fragmented drainage patterns in isolated thermokarst bogs and flooding of soils, and surface soils accumulated new bog peat. We were not able to detect SOC changes in deeper soils, however, due to high variability. Complicated soil stratigraphy revealed that permafrost has repeatedly aggraded and degraded in all landscapes during the Holocene, although in silty uplands only the upper permafrost was affected. Overall, permafrost thaw has led to the reorganization of vegetation, water storage and flow paths, and patterns of SOC accumulation. However, changes have occurred over different timescales among landscapes: over decades in rocky uplands and gravelly–sandy lowlands in response to fire and lake drainage, over decades to centuries in peaty–silty lowlands with a legacy of complicated Holocene changes, and over centuries in silty uplands where ice-rich soil and ecological recovery protect permafrost

Bog · Chronosequence · Hydrology (agriculture · Peat · Permafrost · Soil carbon · Soil water · Thermokarst · Vegetation (pathology · Climate change and permafrost · Cryospheric studies and observations · Environmental Science · Peatlands and Wetlands Ecology · Ecology · Geology · Oceanography · Soil Science

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Unique citing works20
Citations per year1,54
Citation span2013 - 2025 (13)
Citation velocityrecent
Highly citedNo
Citation typesNeutral: 20

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