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John S King

Showing results (1-10 of 21) with videos related to

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Tree Physiology|September 3, 2005
Effects of elevated concentrations of atmospheric CO2 and tropospheric O3 on leaf litter production and chemistry in trembling aspen and paper birch communitiesLingli Liu, John S King, Christian P Giardina
Tree Physiology|August 12, 2011
Genetic effects on total phenolics, condensed tannins and non-structural carbohydrates in loblolly pine (Pinus taeda L.) needlesMichael J Aspinwall, John S King, Fitzgerald L Booker, et al.
The New Phytologist|July 23, 2008
Soil respiration, root biomass, and root turnover following long-term exposure of northern forests to elevated atmospheric CO2 and tropospheric O3Kurt S Pregitzer, Andrew J Burton, John S King, et al.
Tree Physiology|September 3, 2005
Effects of elevated concentrations of atmospheric CO2 and tropospheric O3 on decomposition of fine rootsJack A Chapman, John S King, Kurt S Pregitzer, et al.
Tree Physiology|March 11, 2011
Leaf-level gas-exchange uniformity and photosynthetic capacity among loblolly pine (Pinus taeda L.) genotypes of contrasting inherent genetic variationMichael J Aspinwall, John S King, Steven E McKeand, et al.
Environmental Pollution (Barking, Essex : 1987)|July 8, 2011
Exposure to moderate concentrations of tropospheric ozone impairs tree stomatal response to carbon dioxideGabriela Onandia, Anna-Karin Olsson, Sabine Barth, et al.
Nature|October 17, 2003
Reduction of soil carbon formation by tropospheric ozone under increased carbon dioxide levelsWendy M Loya, Kurt S Pregitzer, Noah J Karberg, et al.
Global Change Biology|July 26, 2017
The role of harvest residue in rotation cycle carbon balance in loblolly pine plantations. Respiration partitioning approachAsko Noormets, Steve G McNulty, Jean-Christophe Domec, et al.
Tree Physiology|February 8, 2017
An extractive removal step optimized for a high-throughput α-cellulose extraction method for δ13C and δ18O stable isotope ratio analysis in conifer tree ringsWen Lin, Asko Noormets, John S King, et al.
The New Phytologist|April 20, 2021
Below-ground carbon input to soil is controlled by nutrient availability and fine root dynamics in loblolly pineJohn S King, Timothy J Albaugh, H Lee Allen, et al.
Pageof 3

Showing results (1-10 of 21) with videos related to

Sort By:
Pageof 3
Tree Physiology|September 3, 2005
Effects of elevated concentrations of atmospheric CO2 and tropospheric O3 on leaf litter production and chemistry in trembling aspen and paper birch communitiesLingli Liu, John S King, Christian P Giardina
Tree Physiology|August 12, 2011
Genetic effects on total phenolics, condensed tannins and non-structural carbohydrates in loblolly pine (Pinus taeda L.) needlesMichael J Aspinwall, John S King, Fitzgerald L Booker, et al.
The New Phytologist|July 23, 2008
Soil respiration, root biomass, and root turnover following long-term exposure of northern forests to elevated atmospheric CO2 and tropospheric O3Kurt S Pregitzer, Andrew J Burton, John S King, et al.
Tree Physiology|September 3, 2005
Effects of elevated concentrations of atmospheric CO2 and tropospheric O3 on decomposition of fine rootsJack A Chapman, John S King, Kurt S Pregitzer, et al.
Tree Physiology|March 11, 2011
Leaf-level gas-exchange uniformity and photosynthetic capacity among loblolly pine (Pinus taeda L.) genotypes of contrasting inherent genetic variationMichael J Aspinwall, John S King, Steven E McKeand, et al.
Environmental Pollution (Barking, Essex : 1987)|July 8, 2011
Exposure to moderate concentrations of tropospheric ozone impairs tree stomatal response to carbon dioxideGabriela Onandia, Anna-Karin Olsson, Sabine Barth, et al.
Nature|October 17, 2003
Reduction of soil carbon formation by tropospheric ozone under increased carbon dioxide levelsWendy M Loya, Kurt S Pregitzer, Noah J Karberg, et al.
Global Change Biology|July 26, 2017
The role of harvest residue in rotation cycle carbon balance in loblolly pine plantations. Respiration partitioning approachAsko Noormets, Steve G McNulty, Jean-Christophe Domec, et al.
Tree Physiology|February 8, 2017
An extractive removal step optimized for a high-throughput α-cellulose extraction method for δ13C and δ18O stable isotope ratio analysis in conifer tree ringsWen Lin, Asko Noormets, John S King, et al.
The New Phytologist|April 20, 2021
Below-ground carbon input to soil is controlled by nutrient availability and fine root dynamics in loblolly pineJohn S King, Timothy J Albaugh, H Lee Allen, et al.
Pageof 3