Soil carbon pools of six ecological regions of the United States

Amitava Chatterjee

Journal of Forestry Research ›› 2019, Vol. 31 ›› Issue (5) : 1933 -1938.

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Journal of Forestry Research ›› 2019, Vol. 31 ›› Issue (5) : 1933 -1938. DOI: 10.1007/s11676-019-00976-z
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Soil carbon pools of six ecological regions of the United States

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Abstract

Mineralisable soil organic carbon (SOC) pools vary with ecosystem type in response to changes in climate, vegetation and soil properties. Understanding the effect of climate and soil factors on SOC pools is critical for predicting change over time. Surface soil samples from six ecoregions of the United States were analyzed for permanganate oxidizable C (KMnO4-C) and mineralizable C pools. Variations of SOC ranged from 7.9 mg g−1 (Florida site) to 325 mg g−1 (Hawaii site). Mineralisable C pools and KMnO4-C were highest in soils from the Hawaii site. Mean annual precipitation explains SOC and resistant C pool variations. Clay content was related to mineralisable active C pools and bacterial abundance. Mean annual precipitation and clay content are potential variables for predicting changes in SOC pools at large spatial scales.

Keywords

Permanganate oxidizable carbon (KMnO4-C) / Resistant carbon pool / Mean residence time / Soil carbon pools / United States

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Amitava Chatterjee. Soil carbon pools of six ecological regions of the United States. Journal of Forestry Research, 2019, 31(5): 1933-1938 DOI:10.1007/s11676-019-00976-z

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References

[1]

Brady NC, Weil RR. The nature and properties of soils, 2008 14 New Jersey: Pearson Education Inc..

[2]

Chen QS, Wang QB, Han XG, Wan SQ, Li LH. Temporal and spatial variability and controls of soil respiration in a temperate steppe in northern China. Glob Biogeochem Cycles, 2010

[3]

Colman BP, Schimel JP. Drivers of microbial respiration and net N mineralization at the continental scale. Soil Biol Biochem, 2013, 60: 65-76.

[4]

Conant RT, Dalla-Betta P, Klopatek CC, Klopatek JA. Controls on soil respiration in semiarid soils. Soil Biol Biochem, 2004, 36: 945-951.

[5]

Culman SW, Snapp SS, Freeman MA, Schipanski ME, Beniston J, Lal R, Drinkwater LE, Franzluebbers AJ, Glover JD, Grandy AS, Lee J, Six J, Maul JE, Mirksy SB, Spargo JT, Wander MM. Permanganate oxidizable carbon reflects a processed soil fraction that is sensitive to management. Soil Sci Soc Am J, 2012, 76: 494-504.

[6]

Davidson EA, Janssens IA. Temperature sensitivity of soil carbon decomposition and feedbacks to climate change. Nature, 2006, 440: 165-173.

[7]

Del Grosso SJ, Parton WJ, Mosier AR, Holland EA, Pendall E, Schimel DS, Ojima DS. Modeling soil CO2 emissions from ecosystems. Biogeochemistry, 2005, 73: 71-91.

[8]

Doetterl S, Stevens A, Six J, Merckx R, Van Oost K, Pinto MC, Casanova-Katny A, Muñoz C, Boudin M, Venegas EZ, Boeckx P. Soil carbon storage controlled by interactions between geochemistry and climate. Nat Geosci, 2015, 8: 780-783.

[9]

Finzi C, Canham CD, Van Breemen N. Canopy tree soil interactions within temperate forests: Species effects on pH and cations. Ecol Appl, 1998, 8: 447-454.

[10]

Franzluebbers AJ, Haney RL, Hons FM, Zuberer DA. Active fractions of organic matter in soils with different texture. Soil Biol Biochem, 1996, 28: 1367-1372.

[11]

Hibbard KA, Law BE, Reichstein M, Sulzman J. An analysis of soil respiration across northern hemisphere temperate ecosystems. Biogeochemistry, 2005, 73: 29-70.

[12]

Insam H. Are the soil microbial biomass and basal respiration governed by the climatic regime. Soil Biol Biochem, 1990, 22: 525-532.

[13]

Maire V, Wright IJ, Prentice IC, Batjes NH, Bhaskar R, van Bodegom PM, Cornwell WK, Ellsworth D, Niinemets Ü, Ordonez A, Reich PB, Santiago LS. Global effects of soil and climate on leaf photosynthetic traits and rates. Glob Ecol Biogeogr, 2015, 24: 706-717.

[14]

Malik AA, Chowdhury S, Schlager V, Oliver A, Puissant J, Vazquez PGM, Jehmlich N, von Bergen M, Griffiths RI, Gleixner G. Soil fungal: bacterial ratios are linked to altered carbon cycling. Front Microbiol, 2016, 7: 1247.

[15]

NEON (2018) National ecological observatory network. https://www.neonscience.org/data-resources/get-data. Data accessed on 9th August 2018

[16]

Nelson DW, Sommers LE. Sparks DL. Total carbon, organic carbon, and organic matter. Methods of soil analysis. Part 3. Chemical methods, 1996, Madison: SSSA-ASA 961 1010

[17]

Paul EA, Morris SJ, Böhm S. Lal R, Kimble JM, Follett RF, Stewart BA. The determination of soil C pools sizes and turnover rates: biophysical fractionation and tracers. Assessment methods for soil carbon, 2001, Boca Raton: CRC Press LLC 193 206

[18]

Paul EA, Morris SJ, Connant RT, Plante AF. Does the acid hydrolysis–incubation method measure meaningful soil organic carbon pools?. Soil Sci Soc Am J, 2006, 70: 1023-1035.

[19]

Raich JW, Schlesinger WH. The global carbon-dioxide flux in soil respiration and its relationship to vegetation and climate. Tellus B, 1992, 44: 81-99.

[20]

Rustad LE, Huntington TG, Boone RD. Controls on soil respiration: implications for climate change. Biogeochemistry, 2000, 48: 1-6.

[21]

Ryan MG, Law BE. Interpreting, measuring, and modeling soil respiration. Biogeochemistry, 2005, 73: 3-27.

[22]

SAS Institute. SAS/STAT User’s guide, version 9.4, 2013, Cary: SAS Institute Inc..

[23]

Schimel DS, Braswell BH, Holland EA, McKeown R, Ojima DS, Painter TH, Parton WJ, Townsend AR. Climatic, edaphic, and biotic controls over storage and turnover of carbon in soils. Global Biogeochem Cycles, 1994, 8(3): 279-293.

[24]

Tirol-Padre A, Ladha JK. Assessing the reliability of permanganate-oxidizable carbon as an index of soil labile carbon. Soil Sci Soc Am J, 2004, 68: 969-978.

[25]

Trumbore SE. Comparison of carbon dynamics in tropical and temperate soils using radiocarbon measurements. Glob Biogeochem Cycles, 1993, 7: 275-290.

[26]

Web Soil Survey (2018) Soil Survey Staff, Natural Resources Conservation Service. United States Department of Agriculture. https://websoilsurvey.sc.egov.usda.gov/. Accessed 10 Feb 2018

[27]

Weil RR, Islam KR, Stine MA, Gruver JB, Samson-Liebig SE. Estimating active carbon for soil quality assessment: a simplified method for laboratory and field use. Am J Altern Agric, 2003, 18(1): 3-17.

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