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Nonlinear CO 2 flux response to 7 years of experimentally induced permafrost thaw

Marguerite Mauritz; Rosvel Bracho; Gerardo Celis; Jack Hutchings; Susan M. Natali; Elaine Pegoraro; Verity G. Salmon; Christina Schädel; Elizabeth E. Webb; Edward A. G. Schuur
Global Change Biology · Vol. 23, Issue 9 · pp. 3646-3666 · 2017

Abstract

Rapid Arctic warming is expected to increase global greenhouse gas concentrations as permafrost thaw exposes immense stores of frozen carbon (C) to microbial decomposition. Permafrost thaw also stimulates plant growth, which could offset C loss. Using data from 7 years of experimental Air and Soil warming in moist acidic tundra, we show that Soil warming had a much stronger effect on CO 2 flux than Air warming. Soil warming caused rapid permafrost thaw and increased ecosystem respiration (R eco ), gross primary productivity ( GPP ), and net summer CO 2 storage ( NEE ). Over 7 years R eco , GPP , and NEE also increased in Control (i.e., ambient plots), but this change could be explained by slow thaw in Control areas. In the initial stages of thaw, R eco , GPP , and NEE increased linearly with thaw across all treatments, despite different rates of thaw. As thaw in Soil warming continued to increase linearly, ground surface subsidence created saturated microsites and suppressed R eco , GPP , and NEE . However R eco and GPP remained high in areas with large Eriophorum vaginatum biomass. In general NEE increased with thaw, but was more strongly correlated with plant biomass than thaw, indicating that higher R eco in deeply thawed areas during summer months was balanced by GPP . Summer CO 2 flux across treatments fit a single quadratic relationship that captured the functional response of CO 2 flux to thaw, water table depth, and plant biomass. These results demonstrate the importance of indirect thaw effects on CO 2 flux: plant growth and water table dynamics. Nonsummer R eco models estimated that the area was an annual CO 2 source during all years of observation. Nonsummer CO 2 loss in warmer, more deeply thawed soils exceeded the increases in summer GPP , and thawed tundra was a net annual CO 2 source.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2017-09-01
Publication Year2017
Volume23
Issue9
Pages3646-3666
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.13661
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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