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Subpicosecond components for quasi-optical spatial electromagnetic signal processing

机译:亚皮秒分量用于准光学空间电磁信号处理

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Abstract: The paper presents new results in the field of super high- speed signal processing. For this purpose we suggested to write digital information into spatial structures (topology) of electromagnetic field pulses. It allows to use passive circuits for fulfillment spatial logical operations. Main physical effects in solids and micron circuits, which influence on time delay of signals, are considered. In accordance to the physical analysis passive circuits of micron size allow to process spatially modulated signals with time delay less than one picosecond. This fact is confirmed by theoretical modeling transients in strip transmission circuits elements and in logical components for spatial signal processing. It is considered theoretical results of modeling several logical circuits for spatially- modulated signal processing and experimental technique for their researchers. The best field of application of the new circuits is quasi-holographic circuits for parallel signal processing. The considered results are interesting in the field of super high-speed applications, microwave-optical engineering, terahertz technique.!8
机译:摘要:本文提出了超高速信号处理领域的新成果。为此,我们建议将数字信息写入电磁场脉冲的空间结构(拓扑)中。它允许使用无源电路来实现空间逻辑运算。考虑了固体和微米电路中的主要物理效应,这些效应会影响信号的时间延迟。根据物理分析,微米级的无源电路允许以小于一皮秒的时间延迟处理空间调制信号。通过对带状传输电路元件和用于空间信号处理的逻辑组件中的瞬态进行理论建模,可以证实这一事实。对于他们的研究人员来说,为空间调制信号处理和实验技术建模几个逻辑电路的理论结果被认为是合理的。新电路的最佳应用领域是用于并行信号处理的准全息电路。在超高速应用,微波光学工程,太赫兹技术领域中,所考虑的结果很有意思!8

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