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1

Chiang, Pen-Chi, and Shu-Yuan Pan. Carbon Dioxide Mineralization and Utilization. Springer Singapore, 2017. http://dx.doi.org/10.1007/978-981-10-3268-4.

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2

Hartemink, Alfred E., and Kevin McSweeney, eds. Soil Carbon. Springer International Publishing, 2014. http://dx.doi.org/10.1007/978-3-319-04084-4.

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3

Kutsch, Werner L., Michael Bahn, and Andreas Heinemeyer, eds. Soil Carbon Dynamics. Cambridge University Press, 2009. http://dx.doi.org/10.1017/cbo9780511711794.

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4

Jensen, Earl H. Soil survey of Carbon area, Utah. The Service, 1988.

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5

Vercammen, James. Dynamic economic modeling of soil carbon. Agriculture and Agri-Food Canada, 2002.

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6

Jandl, Robert, Mirco Rodeghiero, and Mats Olsson, eds. Soil Carbon in Sensitive European Ecosystems. John Wiley & Sons, Ltd, 2011. http://dx.doi.org/10.1002/9781119970255.

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7

Datta, Rahul, Ram Swaroop Meena, Shamina Imran Pathan, and Maria Teresa Ceccherini, eds. Carbon and Nitrogen Cycling in Soil. Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-13-7264-3.

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8

Kutsch, Werner. Soil carbon dynamics: An integrated methodology. Cambridge University Press, 2009.

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9

Svensson, Kjell Sjödahl. Do plants affect nitrogen mineralization? Institution för ekologi och miljövård, Sveriges lantbruksuniversitet, 1993.

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10

Soil Science Society of America, ed. Soil carbon sequestration and the greenhouse effect. 2nd ed. Soil Science Society of America, 2009.

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11

Smith, W. Soil degradation risk indicator: Organic carbon component. Agriculture and Agri-Food Canada, 1997.

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12

Robert, Michel. Soil carbon sequestration for improved land management. Food and Agricultural Organization of the United Nations, 2001.

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13

Lal, Rattan, and Ronald F. Follett, eds. Soil Carbon Sequestration and the Greenhouse Effect. American Society of Agronomy and Soil Science Society of America, 2009. http://dx.doi.org/10.2136/sssaspecpub57.2ed.

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14

Datta, Rahul, and Ram Swaroop Meena, eds. Soil Carbon Stabilization to Mitigate Climate Change. Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-33-6765-4.

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15

Cycles of soil: Carbon, nitrogen, phosphorus, sulfur, micronutrients. Wiley, 1986.

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16

Stevenson, F. J. Cycles of soil: Carbon, nitrogen, phosphorus, sulfur, micronutrients. 2nd ed. Wiley, 1999.

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17

M, Kimble J., Lal R, and Follett R. F. 1939-, eds. Agricultural practices and policies for carbon sequestration in soil. Lewis Publishers, 2002.

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18

Fresquez, Philip R. Carbon dioxide evolution from an organically amended Rio Puerco soil. UDSA Forest Service, Rocky Mountain Forest and Range Experiment Station, 1988.

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19

Fresquez, Philip R. Carbon dioxide evolution from an organically amended Rio Puerco soil. UDSA Forest Service, Rocky Mountain Forest and Range Experiment Station, 1988.

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20

Knoepp, Jennifer D. Quantitative comparison of in situ soil CO₂ flux measurement methods. U.S. Dept. of Agriculture, Forest Service, Southern Research Station, 2002.

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21

Banwart, S. A., E. Noellemeyer, and E. Milne, eds. Soil carbon: science, management and policy for multiple benefits. CABI, 2015. http://dx.doi.org/10.1079/9781780645322.0000.

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22

Sveriges lantbruksuniversitet. Institutionen fo r ekologi och miljo va rd., ed. Theoretical analyses of C and N cycling in soil. Swedish University of Agricultural Sciences, Dept. of Ecology and Environmental Research, 1987.

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23

Soil Management Collaborative Research Support Program. A soil carbon accounting and management system for emissions trading. Soil Management Collaborative Research Support Program, 2002.

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24

Kirkham, M. B. Elevated Carbon Dioxide: Impacts on Soil and Plant Water Relations. CRC Press, 2011.

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25

Gakkai, Nihon Dojō Hiryō. Tsuchi to tankabutsu: Tanso no kakuri to choryū = Soil and char-- sequestration and accumulation of carbon. Hakuyūsha, 2013.

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26

Ryszard, Laskowski, ed. Litter decomposition: A guide to carbon and nutrient turnover. Elsevier/Academic Press, 2006.

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27

Harden, J. W. Mississippi Basin Carbon Project: Upland soil database for sites in Yazoo basin, northern Mississippi. U.S. Dept. of the Interior, U.S. Geological Survey, 1999.

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28

service), SpringerLink (Online, ed. Carbon Sequestration in Agricultural Soils: A Multidisciplinary Approach to Innovative Methods. Springer Berlin Heidelberg, 2012.

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29

Jandl, R., Mirco Rodeghiero, and Mats Olsson. Soil carbon in sensitive European ecosystems: From science to land management. John Wiley & Sons, 2011.

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30

Ndiaye, Aissatou. Impact of a red clover winter cover crop on carbon and nitrogen mineralization by microorganisms in soil aggregates. 1998.

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31

Wilsey, Brian J. Nutrient Cycling and Energy Flow in Grasslands. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198744511.003.0004.

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Net primary productivity (NPP) is the amount of C or biomass that accumulates over time and is photosynthesis—autotroph respiration. Annual NPP is estimated by summing positive biomass increments across time periods during the growing season, including offtake to herbivores, which can be high in grasslands. Remote sensing techniques that are used to assess NPP are discussed by the author. Belowground productivity can be high in grasslands, and it is important to carbon storage. Across grasslands on a geographic scale, NPP, N mineralization, and soil organic C all increase with annual precipitation. Within regions, NPP can be strongly affected by the proportion of C4 plant species and animal species composition and diversity. Humans are adding more N to the environment than all the natural forms of addition (fixation and lightning) combined. Animals, especially herbivores, can have strong effects on how plants respond to changes in changes in resource availability.
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32

Chiang, Pen-Chi, and Shu-Yuan Pan. Carbon Dioxide Mineralization and Utilization. Springer, 2018.

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33

Chiang, Pen-Chi, and Shu-Yuan Pan. Carbon Dioxide Mineralization and Utilization. Springer, 2017.

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34

Soil Carbon. Nova Science Pub Inc, 2014.

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35

Soil Carbon. Springer, 2014.

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36

Hartemink, Alfred E., and Kevin McSweeney. Soil Carbon. Springer, 2016.

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37

Soil Carbon Storage. Elsevier, 2018. http://dx.doi.org/10.1016/c2016-0-03949-9.

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38

Kimble, John M., Charles W. Rice, Debbie Reed, Sian Mooney, Ronald F. Follett, and Rattan Lal, eds. Soil Carbon Management. CRC Press, 2007. http://dx.doi.org/10.1201/9781420044096.

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39

R, Lal, ed. Assessment methods for soil carbon. Lewis Publishers, 2001.

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40

Eric, Roose, ed. Soil erosion and carbon dynamics. Taylor & Francis, 2005.

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41

The Future of Soil Carbon. Elsevier, 2018. http://dx.doi.org/10.1016/c2016-0-01797-7.

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42

Rattan, Lal, Feller Christian, Barthes Bernard, et al., eds. Soil Erosion and Carbon Dynamics. Taylor & Francis, 2006.

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43

R, Lal, ed. Soil processes and the carbon cycle. CRC Press, 1998.

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44

Datta, Rahul, Ram Swaroop Meena, Shamina Imran Pathan, and Maria Teresa Ceccherini. Carbon and Nitrogen Cycling in Soil. Springer, 2019.

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45

R, Lal, and Stewart B. A. 1932-, eds. Carbon management, biofuels, and soil quality. CRC Press, 2010.

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46

R, Lal, ed. Management of carbon sequestration in soil. CRC Press, 1998.

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47

1960-, Kutsch Werner, Bahn Michael, and Heinemeyer Andreas, eds. Soil carbon dynamics: An integrated methodology. Cambridge University Press, 2009.

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48

Soil survey of Carbon area, Utah. The Service, 1988.

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49

Lal, Rattan. Management of Carbon Sequestration in Soil. Taylor & Francis Group, 2017.

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50

Soil carbon dynamics: An integrated methodology. Cambridge University Press, 2009.

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