Abstract

Soil respiration is the sum of heterotrophic respiration (CO 2 effluxes from soil organic carbon and litter) and autotrophic respiration (CO 2 effluxes from root-derived carbon), and because these sources may respond differently to changes in environmental conditions, it is important to estimate the individual response of each source to climate change for more precise estimation of the response of soil respiration to climate change. In this study, we used radiocarbon ( 14C) signatures to partition soil respiration in a cool–temperate deciduous forest, using an isotope mass balance approach. Monthly measurements of soil respiration rates and 14C emissions from soil respiration were conducted using a closed chamber method throughout the growing seasons (May–November) in 2007 and 2008. The 14C contents in root-derived CO 2 were assumed to be equivalent to those of the CO 2 in the atmosphere or CO 2 derived from stored carbon in the plant body with a mean residence time of 2.5 years. 14C contents in CO 2 efflux from soil organic carbon were calculated using a model based on five soil organic carbon (SOC) pools and mean residence times of these pools. The contributions of CO 2 efflux from surface litter to the total soil respiration were directly measured in situ. The seasonal variation clearly differed among the carbon sources. The contribution of heterotrophic respiration increased with the rise in soil temperature in August and September. Conversely, the contribution of root-derived carbon increased in late July and appeared to correlate with vegetation phenology. The annual CO 2 flux was calculated using empirical models based on the soil temperature with the phenology index and the daily averaged soil temperature of the site. Based on these results, the contribution rates of CO 2 sources to soil respiration were estimated as 35–39% from surface litter, 23–33% from SOC, and 31–39% from root-derived carbon.

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