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All-Optical Logic Gates and Wavelength Conversion via the Injection Locking of a Fabry-Perot Semiconductor Laser

机译:通过法布里-珀罗半导体激光器的注入锁定实现全光逻辑门和波长转换

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This work investigates the implementation of all-optical logic gates based on optical injection locking (OIL). All-optical inverting, NOR, and NAND gates are experimentally demonstrated using two distributed feedback (DFB) lasers, a multi-mode Fabry-Perot laser diode, and an optical band-pass filter. The DFB lasers are externally modulated to represent logic inputs into the cavity of the multi-mode Fabry-Perot slave laser. The input DFB (master) lasers' wavelengths are aligned with the longitudinal modes of the Fabry-Perot slave laser and their optical power is used to modulate the injection conditions in the Fabry-Perot slave laser. The optical band-pass filter is used to select a Fabry-Perot mode that is either suppressed or transmitted given the logic state of the injecting master laser signals. When the input signal(s) is (are) in the on state, injection locking, and thus the suppression of the non-injected Fabry-Perot modes, is induced, yielding a dynamic system that can be used to implement photonic logic functions. Additionally, all-optical photonic processing is achieved using the cavity-mode shift produced in the injected slave laser under external optical injection. The inverting logic case can also be used as a wavelength converter - a key component in advanced wavelength-division multiplexing networks. As a result of this experimental investigation, a more comprehensive understanding of the locking parameters involved in injecting multiple lasers into a multi-mode cavity and the logic transition time is achieved. The performance of optical logic computations and wavelength conversion has the potential for ultrafast operation, limited primarily by the photon decay rate in the slave laser.
机译:这项工作研究了基于光注入锁定(OIL)的全光逻辑门的实现。使用两个分布式反馈(DFB)激光器,多模式Fabry-Perot激光二极管和光学带通滤波器,通过实验演示了全光反相,NOR和NAND门。 DFB激光器从外部进行调制,以表示逻辑输入到多模Fabry-Perot从激光器的腔中。输入DFB(主)激光器的波长与Fabry-Perot从激光器的纵向模式对齐,并且它们的光功率用于调制Fabry-Perot从激光器的注入条件。光学带通滤波器用于选择Fabry-Perot模式,该模式在给定注入主激光信号的逻辑状态的情况下被抑制或传输。当输入信号处于开启状态时,会引发注入锁定,从而抑制了未注入的Fabry-Perot模式,从而产生了可用于实现光子逻辑功能的动态系统。另外,使用在外部光注入下注入的从属激光器中产生的腔模式偏移,可以实现全光子处理。反相逻辑盒也可以用作波长转换器-高级波分复用网络中的关键组件。作为这项实验研究的结果,可以更全面地了解将多个激光器注入多模腔所涉及的锁定参数以及逻辑转换时间。光学逻辑计算和波长转换的性能具有超快运行的潜力,这主要受从激光器中光子衰减率的限制。

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