Sustained effects of atmospheric [CO2] and nitrogen availability on forest soil CO2 efflux. (12th February 2014)
- Record Type:
- Journal Article
- Title:
- Sustained effects of atmospheric [CO2] and nitrogen availability on forest soil CO2 efflux. (12th February 2014)
- Main Title:
- Sustained effects of atmospheric [CO2] and nitrogen availability on forest soil CO2 efflux
- Authors:
- Oishi, A. Christopher
Palmroth, Sari
Johnsen, Kurt H.
McCarthy, Heather R.
Oren, Ram - Abstract:
- <abstract abstract-type="main" id="gcb12414-abs-0001"> <title>Abstract</title> <p>Soil CO<sub>2</sub> efflux (<italic>F</italic><sub>soil</sub>) is the largest source of carbon from forests and reflects primary productivity as well as how carbon is allocated within forest ecosystems. Through early stages of stand development, both elevated [CO<sub>2</sub>] and availability of soil nitrogen (N; sum of mineralization, deposition, and fixation) have been shown to increase gross primary productivity, but the long‐term effects of these factors on <italic>F</italic><sub>soil</sub> are less clear. Expanding on previous studies at the Duke Free‐Air CO<sub>2</sub> Enrichment (FACE) site, we quantified the effects of elevated [CO<sub>2</sub>] and N fertilization on <italic>F</italic><sub>soil</sub> using daily measurements from automated chambers over 10 years. Consistent with previous results, compared to ambient unfertilized plots, annual <italic>F</italic><sub>soil</sub> increased under elevated [CO<sub>2</sub>] (ca. 17%) and decreased with N (ca. 21%). N fertilization under elevated [CO<sub>2</sub>] reduced <italic>F</italic><sub>soil</sub> to values similar to untreated plots. Over the study period, base respiration rates increased with leaf productivity, but declined after productivity saturated. Despite treatment‐induced differences in aboveground biomass, soil temperature and water content were similar among treatments. Interannually, low soil water content decreased annual<abstract abstract-type="main" id="gcb12414-abs-0001"> <title>Abstract</title> <p>Soil CO<sub>2</sub> efflux (<italic>F</italic><sub>soil</sub>) is the largest source of carbon from forests and reflects primary productivity as well as how carbon is allocated within forest ecosystems. Through early stages of stand development, both elevated [CO<sub>2</sub>] and availability of soil nitrogen (N; sum of mineralization, deposition, and fixation) have been shown to increase gross primary productivity, but the long‐term effects of these factors on <italic>F</italic><sub>soil</sub> are less clear. Expanding on previous studies at the Duke Free‐Air CO<sub>2</sub> Enrichment (FACE) site, we quantified the effects of elevated [CO<sub>2</sub>] and N fertilization on <italic>F</italic><sub>soil</sub> using daily measurements from automated chambers over 10 years. Consistent with previous results, compared to ambient unfertilized plots, annual <italic>F</italic><sub>soil</sub> increased under elevated [CO<sub>2</sub>] (ca. 17%) and decreased with N (ca. 21%). N fertilization under elevated [CO<sub>2</sub>] reduced <italic>F</italic><sub>soil</sub> to values similar to untreated plots. Over the study period, base respiration rates increased with leaf productivity, but declined after productivity saturated. Despite treatment‐induced differences in aboveground biomass, soil temperature and water content were similar among treatments. Interannually, low soil water content decreased annual <italic>F</italic><sub>soil</sub> from potential values – estimated based on temperature alone assuming nonlimiting soil water content – by ca. 0.7% per 1.0% reduction in relative extractable water. This effect was only slightly ameliorated by elevated [CO<sub>2</sub>]. Variability in soil N availability among plots accounted for the spatial variability in <italic>F</italic><sub>soil</sub>, showing a decrease of ca. 114 g C m<sup>−2</sup> yr<sup>−1</sup> per 1 g m<sup>−2</sup> increase in soil N availability, with consistently higher <italic>F</italic><sub>soil</sub> in elevated [CO<sub>2</sub>] plots ca. 127 g C per 100 ppm [CO<sub>2</sub>] over the +200 ppm enrichment. Altogether, reflecting increased belowground carbon partitioning in response to greater plant nutritional needs, the effects of elevated [CO<sub>2</sub>] and N fertilization on <italic>F</italic><sub>soil</sub> in this stand are sustained beyond the early stages of stand development and through stabilization of annual foliage production.</p> </abstract> … (more)
- Is Part Of:
- Global change biology. Volume 20:Number 4(2014:Apr.)
- Journal:
- Global change biology
- Issue:
- Volume 20:Number 4(2014:Apr.)
- Issue Display:
- Volume 20, Issue 4 (2014)
- Year:
- 2014
- Volume:
- 20
- Issue:
- 4
- Issue Sort Value:
- 2014-0020-0004-0000
- Page Start:
- 1146
- Page End:
- 1160
- Publication Date:
- 2014-02-12
- Subjects:
- Climatic changes -- Environmental aspects -- Periodicals
Troposphere -- Environmental aspects -- Periodicals
Biodiversity conservation -- Periodicals
Eutrophication -- Periodicals
551.5 - Journal URLs:
- http://www.blackwell-synergy.com/member/institutions/issuelist.asp?journal=gcb ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1111/gcb.12414 ↗
- Languages:
- English
- ISSNs:
- 1354-1013
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4195.358330
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 3729.xml