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Self-Winding Helices as Slow-Wave Structures for Sub-Millimeter Traveling-Wave Tubes

机译:自缠绕螺旋作为副表距离波管的慢波结构

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We present a transformative route to obtain mass-producible helical slow-wave structures for operation in beam-wave interaction devices at THz frequencies. The approach relies on guided self-assembly of conductive nano-membranes. Our work coordinates simulations of cold helices (i.e., helices with no electron beam) and hot helices (i.e., helices that interact with an electron beam). The theoretical study determines electromagnetic fields, current distributions, and beam- wave interaction in a parameter space that has not been explored before. These parameters include microscale diameter, pitch, tape width, and nanoscale surface finish. Parametric simulations show that beam-wave interaction devices based on self-assembled and electroplated helices will potentially provide gain-bandwidth products higher than 2 dBTHz at 1 THz. Informed by the simulation results, we fabricate prototype helices for operation as slow-wave structures at THz frequencies, using metal nanomembranes. Single and intertwined double helices, as well as helices with one or two chiralities, are obtained by self-assembly of stressed metal bilayers. The nanomembrane stiffness and built-in stress control the diameter of the helices. The inplane geometry of the nanomembrane determines the pitch, the chirality, and the formation of single vs intertwined double helices.
机译:我们提出了一种在太赫兹频率的注波互作用装置中获得可大规模生产的螺旋慢波结构的改造途径。该方法依赖于导电纳米膜的引导自组装。我们的工作协调了冷螺旋(即没有电子束的螺旋)和热螺旋(即与电子束相互作用的螺旋)的模拟。理论研究确定了参数空间中的电磁场、电流分布和注波相互作用,这是以前从未探索过的。这些参数包括微尺度直径、螺距、胶带宽度和纳米尺度表面光洁度。参数模拟表明,基于自组装和电镀螺旋的注波互作用器件在1thz下可能提供高于2dbthz的增益带宽积。根据模拟结果,我们使用金属纳米膜制作了原型螺旋,以在太赫兹频率下作为慢波结构运行。通过应力金属双层膜的自组装,可以获得单螺旋和交织的双螺旋,以及具有一个或两个手性的螺旋。纳米膜的刚度和内置应力控制螺旋的直径。纳米膜的平面内几何形状决定了螺距、手性以及单螺旋与交织双螺旋的形成。

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