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1

Crawford, G. B. On the contribution of bubbles and waves to air-sea COb2s flux, with implications for remote sensing. Boulder, Colo: National Oceanic and Atmospheric Administration, Environmental Research Laboratories, 1987.

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2

Duarte, Pedro. Oceans and the Atmospheric Carbon Content. Dordrecht: Springer Science+Business Media B.V., 2011.

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3

K, Bi͡utner Ė. Planetarnyĭ gazoobmen O₂ i CO₂. Leningrad: Gidrometeoizdat, 1986.

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4

Park, Geun-Ha. Procedures to create near real-time seasonal air-sea CO₂ flux maps. Miami, Fla: United States Dept. of Commerce, National Oceanic and Atmospheric Administration, Office of Oceanic and Atmospheric Research, 2010.

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5

Adams, Jonathan. Vegetation—Climate Interaction: How Plants Make the Global Environment. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2007.

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6

International Symposium CO₂ in the Oceans (2nd 1999 Tsukuba Center of Institutes). Proceedings of the 2nd International Symposium CO₂ in the Oceans: The 12th Global Environment Tsukuba, 18-22 January 1999, Tsukuba Center of Institutes. [Tsukuba, Ibaraki, Japan]: Center for Global Environmental Research, National Institute for Environmental Studies, 1999.

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7

Carbon and nutrient fluxes in continental margins: A global synthesis. Berlin: Springer Verlag, 2010.

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8

Enting, I. G. Future emissions and concentrations of carbon dioxide: Key ocean/atmosphere/land analyses. Australia: CSIRO, 1994.

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9

Kumar, M. Dileep. Biogeochemistry of the North Indian Ocean. New Delhi: Indian National Science Academy, 2006.

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10

Borisenkov, Evgeniĭ Panteleĭmonovich. Krugovorot ugleroda i klimat. Moskva: Gidrometeoizdat, 1988.

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11

The environmental and economic impacts of ocean acidification: Hearing before the Subcommittee on Oceans, Atmosphere, Fisheries, and Coast Guard of the Committee on Commerce, Science, and Transportation, United States Senate, One Hundred Eleventh Congress, second session, April 22, 2010. Washington: U.S. G.P.O., 2011.

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12

National Research Council (U.S.). Committee on the Human Dimensions of Global Change. und Workshop on Human Interactions with the Carbon Cycle (2001 : Washington, D.C.), Hrsg. Human interactions with the carbon cycle: Summary of a workshop. Washington, D.C: National Academy Press, 2002.

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13

Nosratinia, M. A. Carbon and nitrogen interactions in plasma nitrided chromium bearing steels. Birmingham: University of Birmingham, 1989.

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14

The Federal Ocean Acidification Research and Monitoring Act: H.R. 4174 : hearing before the Subcommittee on Energy and Environment, Committee on Science and Technology, House of Representatives, One Hundred Tenth Congress, second session, June 5, 2008. Washington: U.S. G.P.O., 2008.

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15

Goulder, Lawrence H. Do the costs of a carbon tax vanish when interactions with other taxes are accounted for? Cambridge, MA: National Bureau of Economic Research, 1992.

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16

A, Madore Monica, Lucas W. J und University of California, Riverside. Dept. of Botany and Plant Sciences., Hrsg. Carbon partitioning and source-sink interactions in plants: Proceedings, 17th annual Riverside Symposium in Plant Physiology, January 19-21, 1995, Department of Botany and Plant Sciences, University of California, Riverside. Rockville, Md: American Society of Plant Physiologists, 1995.

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17

Workshop on Climate-Vegetation Interactions (1986 Goddard Space Flight Center). Climate-vegetation interactions: Proceedings of a workshop held at and sponsored by NASA/Goddard Space Flight Center, Greenbelt, Md., 27-29 Jan. 1986. Boulder, Colo: Office for Interdisciplinary Earth Studies, University Corporation for Atmospheric Research, 1986.

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18

Center), Workshop on Climate-Vegetation Interactions (1986 Goddard Space Flight. Climate-vegetation interactions: Proceedings of a workshop held at and sponsored by NASA/Goddard Space Flight Center, Greenbelt, Md., 27-29 Jan. 1986. Boulder, Colo: Office for Interdisciplinary Earth Studies, University Corporation for Atmospheric Research, 1986.

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19

McInerney, M. The effect of earthworm activity, silt/clay content and climatic interactions on soil organic matter dynamics in forestry systems. Dublin: University College Dublin, 1998.

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20

Labgaa, Rachid R. A model of the CO2 exchanges between biosphere and atmosphere in the tundra. Santa Barbara, CA: Earth-Space Research Group, CRSEO -- Ellison Hall, University of California Santa Barbara, 1994.

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21

Lehtipuu, Outi, und Michael Labahn, Hrsg. Tolerance, Intolerance, and Recognition in Early Christianity and Early Judaism. NL Amsterdam: Amsterdam University Press, 2021. http://dx.doi.org/10.5117/9789462984462.

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This collection of essays investigates signs of toleration, recognition, respect and other positive forms of interaction between and within religious groups of late antiquity. At the same time, it acknowledges that examples of tolerance are significantly fewer in ancient sources than examples of intolerance and are often limited to insiders, while outsiders often met with contempt, or even outright violence. The essays take both perspectives seriously by analysing the complexity pertaining to these encounters. Religious concerns, ethnicity, gender and other social factors central to identity formation were often intertwined and they yielded different ways of drawing the limits of tolerance and intolerance. This book enhances our understanding of the formative centuries of Jewish and Christian religious traditions. It also brings the results of historical inquiry into dialogue with present-day questions of religious tolerance. The book contains contributions by Ismo Dunderberg, Carmen Palmer, Michael Labahn, Nina Nikki, Anna-Liisa Rafael, Sami Yli-Karjanmaa, Galit Hasan-Rokem & Israel Yuval, Paul Middleton, Outi Lehtipuu, Elizabeth Dowling, and Amy-Jill Levine.
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22

Adams, Jonathan. Vegetation-Climate Interaction. Springer, 2009.

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23

Supercritical Carbon Dioxide Interaction with Polymeric Materials: Desorption Diffusion Coefficient Measurements. Storming Media, 2004.

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24

Duarte, Pedro, und J. Magdalena Santana-Casiano. Oceans and the Atmospheric Carbon Content. Springer, 2014.

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25

Coupling of Carbon Water and Nutrient Interaction in Woody Plant Soil Systems. Heron Pub, 1986.

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26

T, Ho David, und Atlantic Oceanographic and Meteorological Laboratories., Hrsg. Measurements of underway fCO₂ in the eastern equatorial Pacific on NOAA ships Malcolm Baldrige and Discoverer from February to September, 1994. Miami, Fla: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Atlantic Oceanographic and Meteorological Laboratory, 1997.

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27

T, Ho David, und Atlantic Oceanographic and Meteorological Laboratories, Hrsg. Measurements of underway fCOb2s in the eastern equatorial Pacific on NOAA ships Malcolm Baldrige and Discoverer from February to September, 1994. Miami, Fla: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Atlantic Oceanographic and Meteorological Laboratory, 1997.

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28

P, Ciais, und Climate Monitoring and Diagnostics Laboratory (U.S.), Hrsg. An analytical error estimate for the ocean and land uptake of COb2s using [delta]p13sC observations in the atmosphere. Boulder, Colo: Climate Monitoring and Diagnostics Laboratory, U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, 1995.

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29

Takeo, Hama, Tanoue Eiichiro und Handa Nobuhiko 1932-, Hrsg. Dynamics and characterization of marine organic matter. Tokyo: Terra Scientific Pub. Co., 2000.

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30

1945-, Ittekkot V., Hrsg. Particle flux in the ocean. Chichester: John Wiley & Sons, 1996.

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31

(Editor), N. Handa, E. Tanoue (Editor) und T. Hama (Editor), Hrsg. Dynamics and Characterization of Marine Organic Matter (Ocean Sciences Research, Volume 2) (Ocean Sciences Research). Springer, 2001.

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32

Particle flux in the ocean. John Wiley , 1996.

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33

Howlader, M. B. H. A study of the interaction of some cationic transition-metal compounds with carbon monoxide and nucleophiles. 1993.

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34

D, Castle R., und Atlantic Oceanographic and Meteorological Laboratories, Hrsg. Chemical and hydrographic profiles and underway measurements from the eastern North Atlantic during July and August of 1993. Miami, Fla: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Atlantic Oceanographic and Meteorological Laboratory, 1998.

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35

Baar, Hein J. W. de, Hrsg. Towards a joint global ocean flux study: Rationale, objectives, planning, implementation. Texel, Netherlands: Netherlands Institute for Sea Research, 1988.

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36

Zahn, Rainer, und Thomas F. Pedersen. Carbon Cycling in the Glacial Ocean: Constraints on the Ocean's Role in Global Change : Quantitative Approaches in Paleoceanography (Nato a S I Series Series I, Global Environmental Change). Springer, 1994.

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37

1956-, Zahn Rainer, North Atlantic Treaty Organization. Scientific Affairs Division. und NATO Advance Research Workshop on Carbon Cycling in the Glacial Ocean--Constraints on the Ocean's Role in Global Change (1992 : Fellhorst, Germany), Hrsg. Carbon cycling in the glacial ocean: Constraints on the ocean's role in global change : quantitative approaches in paleoceanography. Berlin: Springer-Verlag, 1994.

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38

Wolf, E. L. More about the Atmosphere, Molecules, and their Interaction with Radiation. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198769804.003.0007.

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Electric dipole radiation is possible from certain molecules (but not with diatomics like oxygen and nitrogen) to make them active in intercepting and re-radiating electromagnetic waves in the atmosphere. Molecules of the greenhouse gas variety include carbon dioxide, ozone and water, as discussed in this chapter. Molecular contributions to the greenhouse heat-trapping effect are described, including sophisticated satellite measurements. The role of molecular absorption in altering the ground-level solar spectrum absorbed by solar farms is summarized. In this chapter we provide a molecular basis for the absorption and emission from the atmosphere, first discussed in Chapter 3. This gives a better understanding of the solar spectrum as seen on Earth, that feeds photovoltaic devices as well as heating the Earth’s surface, that in turn creates winds and waves that can be harvested.
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39

Vegetation-Climate Interaction: How Vegetation Makes the Global Environment (Springer Praxis Books / Environmental Sciences). Springer, 2007.

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40

Carré, Jane. Effects of over-expression of a mitochondrial HSP70 cognate on the interaction between carbon and nitrogen metabolism in tobacco. 2000.

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41

1943-, Hanson Roger B., Ducklow Hugh W. 1949- und Field J. G, Hrsg. The changing ocean carbon cycle: A midterm synthesis of the Joint Global Ocean Flux Study. Cambridge: Cambridge University Press, 2000.

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42

(Editor), Roger B. Hanson, Hugh W. Ducklow (Editor) und John G. Field (Editor), Hrsg. The Changing Ocean Carbon Cycle: A Midterm Synthesis of the Joint Global Ocean Flux Study. Cambridge University Press, 1999.

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43

Kyotani, T., und H. Orikasa. Templated carbon nanotubes and the use of their cavities for nanomaterial synthesis. Herausgegeben von A. V. Narlikar und Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.11.

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This article focuses on templated carbon nanotubes (CNTs) and how their cavities can be used for the synthesis of nanomaterials. In particular, it demonstrates how effectively the CNTs can be functionalized by the template carbonization technique. The article first describes the method for synthesizing CNTs and carbon nano-test-tubes (CNTTs). It then considers the controlled filling of magnetic materials into CNTTs, taking into account the electrochemical deposition of Ni-Fe alloy and the magnetic properties of NiFe-filled CNTTs. It also examines the synthesis of water-dispersible and magnetically responsive CNTTs, with emphasis on water dispersibility and the effect of magnetic interaction. Finally, it shows how the cavities of templated CNTs can be utilized as a reaction field for the hydrothermal synthesis of one-dimensional nanomaterials.
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44

Great Britain. Health and Safety Executive., Hrsg. Experimental work to study the interaction between air extraction equipment and open-flued appliances - phase 2: Joint Industry Programme on Carbon Monoxide issues. Sudbury: HSE, 2001.

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45

Great Britain. Health and Safety Executive., Hrsg. Experimental work to study the interaction between air extraction equipment and open-flued appliances - phase 1: Joint Industry Programme on Carbon Monoxide issues. Sudbury: HSE, 2001.

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46

(Editor), Roger B. Hanson, Hugh W. Ducklow (Editor) und John G. Field (Editor), Hrsg. The Changing Ocean Carbon Cycle: A Midterm Synthesis of the Joint Global Ocean Flux Study (International Geosphere-Biosphere Programme Book Series). Cambridge University Press, 2000.

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47

Liam, Fernand, Brewer Peter G, Barry James und ICES Workshop on the Significance of Changing Ocean CO₂ and pH in ICES Shelf Sea Ecosystems (2007 : London, England), Hrsg. Changes in surface CO₂ and ocean pH in ICES shelf sea ecosystems. Copenhagen, Denmark: International Council for the Exploration of the Sea, 2008.

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48

Dagsson-Waldhauserova, Pavla, und Outi Meinander, Hrsg. Atmosphere – Cryosphere Interaction in the Arctic, at High Latitudes and Mountains with Focus on Transport, Deposition and Effects of Dust, Black Carbon, and other Aerosols. Frontiers Media SA, 2020. http://dx.doi.org/10.3389/978-2-88963-504-7.

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49

Ellam, Rob. 2. Isotopic clocks. Oxford University Press, 2016. http://dx.doi.org/10.1093/actrade/9780198723622.003.0002.

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About one in a trillion atoms of carbon is the radioactive isotope 14C. It is a ‘cosmogenic isotope’ produced by the interaction between atmospheric nitrogen (N) and cosmic rays. The half-life of 14C is 5,730 years, so every 5,730 years the ratio of 14C to 12C will halve. ‘Isotopic clocks: the persistence of carbon’ describes how scientists Willard Libby, Hessel de Vries, Hans Seuss, and their contemporaries established the radiocarbon dating technique. Radiocarbon has become one of the most valuable isotopic tools available to scientists looking to date materials formed over the past 50,000 years or to trace and apportion different sources of carbon.
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50

Human Interactions with the Carbon Cycle. Washington, D.C.: National Academies Press, 2002. http://dx.doi.org/10.17226/10357.

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