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Ultrafast Optical Devices for Photonic Integrated Circuit Applications

机译:用于光子集成电路应用的超快光学器件

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摘要

The transmission bandwidth of a modern fiber-optic communication systems depends on the modulation bandwidth of optical signal transmitters, as well as the computation speed of photonic components for optical signal processing. Nowadays, the rapid development of various bandwidth-hungry network products urges the research on optical transmitters and photonic circuits that could support high bit-rate optical signal communication and computation. The objective of this dissertation is to investigate on laser transmitters that allow ultrafast modulations, as well as on photonic integrated circuits components in nonlinear chalcogenide glass substrates that are capable of ultrafast all-optical signal processing.udVertical cavity surface emitting lasers (VCSELs) offers superior properties as signal transmitters in the fiber-optic communication network, such as large modulation bandwidth, low coupling loss with optical fibers, and low fabrication cost. As the modulation bandwidth of VCSELs are limited due to their relaxation modulation frequency up to 20GHz, transverse mode lock of VCSEL is proposed to reach modulation bandwidth beyond 100GHz. Both the static emission and ultrafast dynamics of VCSELs’ transverse modes were studied to explore their potential for mode locking.udAll-optical signal processing with nonlinear photonic integrated circuits (PIC) is an effective solution to overcome the speed limitation arising from opto-electronic conversions in the modern communication network. Performance of individual components in a PIC and its scale of integration are influenced by its substrate material and its fabrication method. In this dissertation, nonlinear PIC components written in ChG substrates by ultrafast laser writing are studied, taking advantages of the unique material traits of chalcogenide glasses (ChGs), and the capability of ultrafast laser writing to fabricate 3D arbitrary structures in nearly any transparent materials. The fabrication challenges arising from the laser-material interaction were overcome, and basic nonlinear PIC components including waveguide Bragg gratings, nonlinear directional couplers and one dimensional waveguide arrays were designed and fabricated. Functionalities of these devices were demonstrated at a reduced power required for nonlinear operations, as compared to similar devices in silica substrates. udThe results presented in this dissertation provide the basics for the realization of on-chip optical network for largely increased data transmission bandwidth and signal processing speed.ud
机译:现代光纤通信系统的传输带宽取决于光信号发射器的调制带宽,以及用于光信号处理的光子组件的计算速度。如今,各种需要大量带宽的网络产品的迅速发展促使人们对可支持高比特率光信号通信和计算的光发射机和光子电路进行研究。本文的目的是研究允许超快速调制的激光发射器,以及能够进行超快全光信号处理的非线性硫族化物玻璃基板中的光子集成电路组件。 ud垂直腔表面发射激光器(VCSEL)提供在光纤通信网络中具有信号传输器的优良特性,例如大的调制带宽,与光纤的耦合损耗低以及制造成本低。由于VCSEL的调制带宽由于其高达20GHz的弛豫调制频率而受到限制,因此建议VCSEL的横向锁模达到超过100GHz的调制带宽。研究了VCSEL横向模式的静态发射和超快动力学,以探索其锁模的潜力。 ud采用非线性光子集成电路(PIC)的全光信号处理是克服光电带来的速度限制的有效解决方案现代通讯网络中的转换。 PIC中各个组件的性能及其集成度受其衬底材料及其制造方法的影响。本文利用硫族化物玻璃(ChGs)的独特材料特性,以及利用超快激光刻写在几乎任何透明材料中制造3D任意结构的能力,研究了通过超快激光刻写在ChG衬底上书写的非线性PIC元件。克服了激光材料相互作用产生的制造挑战,设计并制造了基本的非线性PIC组件,包括波导布拉格光栅,非线性定向耦合器和一维波导阵列。与二氧化硅基板中的类似设备相比,这些设备的功能在非线性操作所需的功率降低的情况下得到了证明。 ud本文的研究结果为片上光网络的实现提供了基础,从而大大提高了数据传输带宽和信号处理速度。

著录项

  • 作者

    Li Mingshan;

  • 作者单位
  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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