The response of root respiration to warmer soil can affect ecosystem carbon (C) allocation and the strength of positive feedbacks between climatic warming and soil CO2 efflux. This study sought to determine whether fine-root (\u3c1 mm) respiration in a sugar maple (Acer saccharum Marsh.)-dominated northern hardwood forest would adjust to experimentally warmed soil, reducing C return to the atmosphere at the ecosystem scale to levels lower than that would be expected using an exponential temperature response function. Infrared heating lamps were used to warm the soil (+4 to +5 °C) in a mature sugar maple forest in a fully factorial design, including water additions used to offset the effects of warming-induced dry soil. Fine-rootspecific res...
It is well known that microbial-mediated soil respiration, the major source of CO2 from terrestrial ...
Ecosystem carbon exchange is poorly understood in low-productivity, semiarid habitats. Here we studi...
Root and rhizosphere processes contribute significantly to soil carbon (C) fluxes, yet mechanism by...
The response of root respiration to warmer soil can affect ecosystem carbon (C) allocation and the s...
Aims: Respiration of sugar maple (Acer saccharum) surface fine roots has been shown to partially acc...
Increasing global temperatures could potentially cause large increases in root respiration and assoc...
Adjustment of ecosystem root respiration to warmer climatic conditions can alter the autotrophic por...
Soil moisture deficits can reduce root respiration, but the effects have yet to be quantified at the...
Adjustment of ecosystem root respiration to warmer climatic conditions can alter the autotrophic por...
A changing global climate may impact the respiration of fine roots. While many models adjust fine ro...
Terrestrial ecosystems can be important sinks for rising atmospheric carbon dioxide (CO$\sb2)$ level...
Sugar maple (Acer saccharum), an economically important timber and syrup species, is not expected to...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/117195/1/eap199883771.pd
We examined fine-root ( \u3c 2.0 mm diameter) respiration throughout one growing season in four nor...
The influence of simulated climate change on soil respiration was studied in a field experiment on 4...
It is well known that microbial-mediated soil respiration, the major source of CO2 from terrestrial ...
Ecosystem carbon exchange is poorly understood in low-productivity, semiarid habitats. Here we studi...
Root and rhizosphere processes contribute significantly to soil carbon (C) fluxes, yet mechanism by...
The response of root respiration to warmer soil can affect ecosystem carbon (C) allocation and the s...
Aims: Respiration of sugar maple (Acer saccharum) surface fine roots has been shown to partially acc...
Increasing global temperatures could potentially cause large increases in root respiration and assoc...
Adjustment of ecosystem root respiration to warmer climatic conditions can alter the autotrophic por...
Soil moisture deficits can reduce root respiration, but the effects have yet to be quantified at the...
Adjustment of ecosystem root respiration to warmer climatic conditions can alter the autotrophic por...
A changing global climate may impact the respiration of fine roots. While many models adjust fine ro...
Terrestrial ecosystems can be important sinks for rising atmospheric carbon dioxide (CO$\sb2)$ level...
Sugar maple (Acer saccharum), an economically important timber and syrup species, is not expected to...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/117195/1/eap199883771.pd
We examined fine-root ( \u3c 2.0 mm diameter) respiration throughout one growing season in four nor...
The influence of simulated climate change on soil respiration was studied in a field experiment on 4...
It is well known that microbial-mediated soil respiration, the major source of CO2 from terrestrial ...
Ecosystem carbon exchange is poorly understood in low-productivity, semiarid habitats. Here we studi...
Root and rhizosphere processes contribute significantly to soil carbon (C) fluxes, yet mechanism by...