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Temporal analog optical computing using an on-chip fully reconfigurable photonic signal processor

机译:使用片上完全可重新配置的光子信号处理器的时间模拟光学计算

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This paper introduces the concept of on-chip temporal optical computing, based on dispersive Fourier transform and suitably designed modulation module, to perform mathematical operations of interest, such as differentiation, integration, or convolution in time domain. The desired mathematical operation is performed as signal propagates through a fully reconfigurable on-chip photonic signal processor. Although a few numbers of photonic temporal signal processors have been introduced recently, they are usually bulky or they suffer from limited reconfigurability which is of great importance to implement large-scale general-purpose photonic signal processors. To address these limitations, this paper demonstrates a fully reconfigurable photonic integrated signal processing system. As the key point, the reconfigurability is achieved by taking advantages of dispersive Fourier transformation, linearly chirp modulation using four-wave mixing, and applying the desired arbitrary transfer function through a cascaded Mach-Zehnder modulator and a phase modulator. Numerical simulations of the proposed structure reveal a great potential for chip-scale fully reconfigurable all-optical signal processing through a bandwidth of 400 GHz.
机译:本文介绍了片上时间光学计算的概念,基于分散傅里叶变换和适当设计的调制模块,以执行感兴趣的数学运算,例如在时域中的差异化,集成或卷积。作为信号传播通过完全可重新配置的片上光子信号处理器,执行所需的数学操作。尽管最近已经介绍了几数量的光子时间信号处理器,但它们通常是笨重的或它们遭受有限的重新配置性,这具有重要的是实现大规模通用光子信号处理器。为了解决这些限制,本文演示了一个完全可重新配置的光子集成信号处理系统。作为关键点,通过采取分散傅里叶变换的优点,使用四波混合的线性啁啾调制来实现重新配置性,并通过级联Mach-Zehnder调制器和相位调制器施加所需的任意传递函数。建议结构的数值模拟揭示了通过400GHz的带宽显示芯片尺度完全可重构的全光信号处理的巨大潜力。

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