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Yield response of Lolium perenne swards to free air CO 2 enrichment increased over six years in a high N input system on fertile soil

Markus Daepp; Daniel Suter; José P. F. Almeida; Hubert Isopp; Ueli A. Hartwig; Marco Frehner; Herbert Blum; Josef Nösberger; Andreas Lüscher
Global Change Biology · Vol. 6, Issue 7 · pp. 805-816 · 2000

Abstract

Summary After a step increase in the atmospheric partial pressure of CO 2 (pCO 2 ), the availability of mineral N may be insufficient to meet the plant's increased demand for N. Over time, however, the ecosystem may adapt to the new conditions, and a new equilibrium may be established in the fluxes of C and N. This would result in a higher dry mass (DM) yield response of the plants to elevated pCO 2 . The effect of elevated atmospheric pCO 2 (60 Pa pCO 2 ) was studied in Lolium perenne L. swards with two N fertilization treatments (14 and 56 g m −2 y −1 ) in a six‐year FACE (Free Air Carbon dioxide Enrichment) experiment. In the high N treatment, the input of N with fertilizer considerably exceeded the export of N with the harvested plant material in both CO 2 treatments leading to an apparent net input of N into the ecosystem. Accordingly, the proportion of harvested N derived from 15 N labelled fertilizer N, applied throughout the experiment ( Lolium perenne sward to elevated pCO 2 increased (from 7% in 1993 to 25% in 1998). In parallel, the response of N yield to elevated pCO 2 increased, and the initially negative effect of elevated pCO 2 on specific leaf area (SLA) disappeared. The high N input system seemed to overcome in part an initially limiting effect of N on the yield response to elevated pCO 2 within a few years. In contrast, there was no apparent net input of N into the ecosystem in the low N treatment, because N fertilization just compensated the export of N with the harvested plant material. Accordingly, the proportion of harvested N yield, derived from fertilizer N, which was applied throughout the experiment, remained low. At low N, the availability of mineral N strongly limited plant growth and yield production in both CO 2 treatments; the low yields of DM and N, the low concentration of N in the plant material, and the low SLA reflected this. Although the plants grew under the same environmental conditions and the same management treatment as plants in the high N treatment, the response of DM yields to elevated pCO 2 in the low N treatment remained weak throughout the experiment (5% in 1993 and 9% in 1998). The results are discussed in the context of the sizes of the different N pools in the soil, the allocation of N within the plant and the possible effects on temporal immobilization, and the availability of mineral N for yield production as affected by elevated pCO 2 and N fertilization.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2000-10-01
Publication Year2000
Volume6
Issue7
Pages805-816
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1046/j.1365-2486.2000.00359.x
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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