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Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry

机译:用于高效高温化学的非平衡微波等离子体

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摘要

A flowing microwave plasma based methodology for converting electric energy into internal and/or translational modes of stable molecules with the purpose of efficiently driving non-equilibrium chemistry is discussed. The advantage of a flowing plasma reactor is that continuous chemical processes can be driven with the flexibility of startup times in the seconds timescale. The plasma approach is generically suitable for conversion/activation of stable molecules such as CO2, N2 and CH4. Here the reduction of CO2 to CO is used as a model system: the complementary diagnostics illustrate how a baseline thermodynamic equilibrium conversion can be exceeded by the intrinsic non-equilibrium from high vibrational excitation. Laser (Rayleigh) scattering is used to measure the reactor temperature and Fourier Transform Infrared Spectroscopy (FTIR) to characterize in situ internal (vibrational) excitation as well as the effluent composition to monitor conversion and selectivity.
机译:讨论了一种基于微波等离子体的流动方法,该方法可将电能转换为稳定分子的内部和/或转化模式,从而有效地驱动非平衡化学。流动等离子体反应器的优点在于,可以以秒为单位的启动时间灵活地驱动连续化学过程。等离子体方法通常适合于稳定分子如CO2,N2和CH4的转化/活化。在这里,将CO2转化为CO的过程用作模型系统:补充诊断方法说明了高振动激发引起的固有非平衡如何可以超过基线热力学平衡转化。激光(Rayleigh)散射用于测量反应器温度,傅里叶变换红外光谱(FTIR)用于表征原位内部(振动)激发以及废水成分,以监测转化率和选择性。

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