Understanding CO2 containing non-equilibrium plasmas

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BIBLIOGRAPHY BIBLIOGRAPHY 156 [65] T. Kozák and A. Bogaerts. Evaluation of the energy efficiency of CO2 con- version in microwave discharges using a reaction kinetics model. Plasma Sources Sci. Technol., 24(1):015024, 2015. [66] B. Eliasson, W. Egli, and U. Kogelschatz. Modelling of dielectric barrier discharge chemistry. Pure Appl. Chem., 66(6):1275–1286, 1994. [67] F. K. Brehmer. Shining light on transient CO2 plasma. Eindhoven Univer- sity of Technology, 2015. [68] J.M. Cormier and I. Rusu. Syngas production via methane steam reforming with oxygen: plasma reactors versus chemical reactors. J. Phys. D: Appl. Phys., 34(18):2798, 2001. [69] P. Pei, S. F. Korom, K. Ling, and J. Nasah. Cost comparison of syn-gas production from natural gas conversion and underground coal gasification. Mitig. Adapt. Strateg. Glob. Change., pages 1–15, 2014. [70] S. Fujita, M. Usui, and N. Takezawa. Mechanism of the reverse water gas shift reaction over Cu/ZnO catalyst. J. Catal., 134(1):220–225, 1992. [71] Wholesale electricity and natural gas market data, U.S. Energy information adminstration, March 2015. [72] C. Goncalves and A. Melling. Perfect match? European Natural Gas Mar- kets and North American LNG exports. Natural Gas & Electricity, 30(8):1– 9, 2014. [73] E.J. Dufek, T.E. Lister, S.G. Stone, and M.E. McIlwain. Operation of a pressurized system for continuous reduction of CO2. J. Electrochem. Soc., 159(9):F514–F517, 2012. [74] G. Centi and S. Perathoner. Opportunities and prospects in the chemical recycling of carbon dioxide to fuels. Catal. Today, 148(3):191–205, 2009. [75] E. B. Khalil and G. A. Karim. A kinetic investigation of the role of changes in the composition of natural gas in engine applications. J ENG GAS TURB POWER, 124(2):404–411, 2002. [76] W. Wei and G. Jinlong. Methanation of carbon dioxide: an overview. Fron- tiers of Chemical Science and Engineering, 5(1):2–10, 2011.

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