Soil carbon CO2fertilization factor: The measure of an ecosystem's capacity to increase soil carbon storage in response to elevated CO2levels
Kevin G. Harrison
Abstract
Kevin G. Harrison
Abstract
This research introduces the concept of a “CO2fertilization factor for soil carbon” (σCF). The σCFis a measure of an ecosystem's capacity to increase soil carbon storage in response to elevated carbon dioxide levels. This paper describes the mathematical derivation of σCFand illustrates how σCFcan be determined experimentally, using data from a white oak study. I have developed this concept to compare the results of carbon dioxide enrichment experiments having different soil carbon turnover times, different levels of CO2enrichment, and different lengths of exposure to elevated carbon dioxide levels. The σCFcan also be used to estimate increases in soil carbon uptake due to observed contemporary increases in atmospheric carbon dioxide levels. Although the approach used here may seem oversimplified, I present it as a simple way of estimating the extent to which elevated levels of CO2could increase soil carbon storage. I have determined a σCFof 1.18 for a white oak ecosystem using soil carbon and radiocarbon measurements. If major terrestrial ecosystems have similar σCFvalues, CO2fertilization may be transferring enough carbon from the atmosphere to soil to balance the global carbon budget.
OpenAlex reports 5 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
This research introduces the concept of a “CO2fertilization factor for soil carbon” (σCF). The σCFis a measure of an ecosystem's capacity to increase soil carbon storage in response to elevated carbon dioxide levels. This paper describes the mathematical derivation of σCFand illustrates how σCFcan be determined experimentally, using data from a white oak study. I have developed this concept to compare the results of carbon dioxide enrichment experiments having different soil carbon turnover times, different levels of CO2enrichment, and different lengths of exposure to elevated carbon dioxide levels. The σCFcan also be used to estimate increases in soil carbon uptake due to observed contemporary increases in atmospheric carbon dioxide levels. Although the approach used here may seem oversimplified, I present it as a simple way of estimating the extent to which elevated levels of CO2could increase soil carbon storage. I have determined a σCFof 1.18 for a white oak ecosystem using soil carbon and radiocarbon measurements. If major terrestrial ecosystems have similar σCFvalues, CO2fertilization may be transferring enough carbon from the atmosphere to soil to balance the global carbon budget.
Key concepts: Carbon dioxide, Soil carbon, Carbon fibers, Environmental science, Carbon dioxide in Earth's atmosphere, Ecosystem, Carbon cycle, Terrestrial ecosystem