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USGS · 1008284

Leaf conductance decreased under free-air CO2 enrichment (FACE) for three perennials in the Nevada desert

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Abstract

A common response of plants to elevated atmospheric CO 2 concentration (CO 2 ) is decreased leaf conductance. Consequently, leaf temperature is predicted to increase under elevated CO 2 . Diurnal patterns of leaf conductance and temperature were measured for three desert perennials, the C 3 shrub Larrea tridentata , C 3 tussock grass Achnatherum hymenoides and C 4 tussock grass Pleuraphis rigida , at the Nevada Desert FACE facility. Measurements were made on ambient and c . 550 µmol mol −1 CO 2 plots through both a wet and dry year. Reductions in conductance were 35%, 20% and 13% for Pleuraphis , Achnatherum and Larrea , respectively. Decreased conductance occurred throughout the day only for Pleuraphis . Both C 3 species had smaller CO 2 effects during dry periods than wet. Leaf temperature did not differ significantly between elevated and ambient CO 2 for any species. Comparisons of blower-control and nonring plots indicated that the FACE apparatus did not confound our results. All three species exhibited decreased leaf conductance under elevated CO 2 , although reductions were not uniform during the day or among years. Nonetheless, leaf energy balance was only minimally changed for these microphyllous desert perennials.

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90° N90° S · 180° W ← longitude → 180° E
Source-reported bounding extent: 34.9767111239173° to 37.36211387955443° latitude; -116.84616194970188° to -114.02513727512203° longitude. This indicates report coverage, not an exact sampling location. View area on OpenStreetMap.

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R.S. Nowak, D.N. Jordan, L.A. DeFalco, C. Wilcox, J.S. Coleman, J.R. Seemann, S.D. Smith. 2001-12-21. Leaf conductance decreased under free-air CO2 enrichment (FACE) for three perennials in the Nevada desert. https://doi.org/10.1046/j.1469-8137.2001.00102.x

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