Elevated atmospheric CO2 and humidity delay leaf fall in Betula pendula, but not in Alnus glutinosa or Populus tremula × tremuloides
Author(s) -
Douglas L. Godbold,
Arvo Tullus,
Priit Kupper,
Jaak Sõber,
Ivika Ostonen,
Jasmin A. Godbold,
Martin Lukáč,
Iftekhar Uddin Ahmed,
Andrew R. Smith
Publication year - 2014
Publication title -
annals of forest science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.763
H-Index - 77
eISSN - 1297-966X
pISSN - 1286-4560
DOI - 10.1007/s13595-014-0382-4
Subject(s) - betula pendula , humidity , alnus glutinosa , relative humidity , precipitation , environmental science , betula pubescens , betula platyphylla , litter , atmospheric sciences , botany , alder , horticulture , agronomy , biology , meteorology , geography , geology
International audienceContextAnthropogenic activity has increased the level of atmospheric CO2, which is driving an increase of global temperatures and associated changes in precipitation patterns. At Northern latitudes, one of the likely consequences of global warming is increased precipitation and air humidity.AimsIn this work, the effects of both elevated atmospheric CO2 and increased air humidity on trees commonly growing in northern European forests were assessed.MethodsThe work was carried out under field conditions by using Free Air Carbon dioxide Enrichment (FACE) and Free Air Humidity Manipulation (FAHM) systems. Leaf litter fall was measured over 4 years (FACE) or 5 years (FAHM) to determine the effects of FACE and FAHM on leaf phenology.ResultsIncreasing air humidity delayed leaf litter fall in Betula pendula, but not in Populus tremula × tremuloides. Similarly, under elevated atmospheric CO2, leaf litter fall was delayed in B. pendula, but not in Alnus glutinosa. Increased CO2 appeared to interact with periods of low precipitation in summer and high ozone levels during these periods to effect leaf fall.ConclusionsThis work shows that increased CO2 and humidity delay leaf fall, but this effect is species-specific
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