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will also be given to put the current research method in a larger framework. The plasma properties that affect CO2 dissociation will also be experimentally studied in the atmospheric pressure microwave system. Properties such as plasma gas temperature, electronic temperature, and vibrational temperature can greatly influence the collisional behavior that leads to dissociation. Therefore such information will provide insight into the experimental results. Lastly, a computational model will be used as a comparison for the experimental results and to provide additional information on plasma properties that cannot be obtained experimentally in the system studied for this dissertation. Electron temperature and electron density play an important role in the outcome of CO2 dissociation and this model will give information on these values. The computational results in combination with the experimental results will provide a complete picture of CO2 dissociation in the microwave plasma. 1.3 Dissertation Overview This dissertation is presented to achieve the above stated aim in the following manner. Chapter II discusses the evidence supporting the energy and climate change challenges and the predictions for the future, citing CO2 as one of the most dangerous global warming gases. Possible solutions to the overabundance of atmospheric CO2 are offered, explaining how plasmas can be used for CO2 mitigation. An overview of plasma systems is given in Chapter III, describing the collision processes that occur within a plasma that lead to efficient dissociation. The properties of radio-frequency (RF) and microwave (MW) plasma sources are discussed as well as reports on plasma/catalyst systems. A preliminary investigation of CO2 dissociation in a low-pressure RF helicon source is presented in Chapter IV. The low energy efficient results from this experiment lead to the design and construction of an atmospheric pressure MW plasma/catalyst system shown in Chapter V. This chapter illustrates details of the experimental setup, 4PDF Image | CO2 Conversion in a Microwave Plasma Catalyst System
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