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首页> 外文期刊>ACS nano >Wavefront Velocity Oscillations of Carbon-Nanotube-Guided Thermopower Waves: Nanoscale Alternating Current Sources
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Wavefront Velocity Oscillations of Carbon-Nanotube-Guided Thermopower Waves: Nanoscale Alternating Current Sources

机译:碳纳米管引导的热电波的波前速度振荡:纳米级交流电源

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摘要

The nonlinear coupling between exothermic chemical reactions and a nanowire or nanotube with large axial heat conduction results in a self-propagating thermal wave guided along the nanoconduit. The resulting reaction wave induces a concomitant thermopower wave of high power density (>7 kW/kg), resulting in an electrical current along the same direction. We develop the theory of such waves and analyze them experimentally, showing that for certain values of the chemical reaction kinetics and thermal parameters, oscillating wavefront velocities are possible. We demonstrate such oscillations experimentally using a cyclotrimethylene-trinitramine/multiwalled carbon nanotube system, which produces frequencies in the range of 400 to 5000 Hz. The propagation velocity oscillations and the frequency dispersion are well-described by Fourier’s law with an Arrhenius source term accounting for reaction and a linear heat exchange with the nanotube scaffold. The frequencies are in agreement with oscillations in the voltage generated by the reaction. These thermopower oscillations may enable new types of nanoscale power and signal processing sources.
机译:放热化学反应与具有大的轴向热传导的纳米线或纳米管之间的非线性耦合导致沿着纳米导管引导的自传播热波。产生的反应波会引起高功率密度(> 7 kW / kg)的伴随热电波,从而沿同一方向产生电流。我们发展了这种波的理论并进行了实验分析,表明对于某些化学反应动力学和热学参数值,振荡波前速度是可能的。我们使用环三亚甲基-三硝胺/多壁碳纳米管系统实验性地证明了这种振动,该系统产生的频率范围为400至5000 Hz。傅立叶定律很好地描述了传播速度的振荡和频率色散,其中Arrhenius源项考虑了反应以及与纳米管支架的线性热交换。频率与反应产生的电压的振荡一致。这些热电振荡可能会启用新型的纳米级电源和信号处理源。

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