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Single and multiple frequency fiber lasers.

机译:单频和多频光纤激光器。

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摘要

Single frequency, low intensity noise, widely tunable lasers operating in the 1.5 {dollar}mu{dollar}m region have potential applications in future wavelength division multiplexed optical communications systems, fiber sensor arrays and high resolution spectroscopic measurements. A single frequency fiber laser having these characteristics will be described in detail. The laser cavity contains an erbium doped fiber gain module, fiber isolators to ensure unidirectional travelling wave operation and two fiber Fabry-Perot filters acting in tandem, which provide broadband tunability (1530 nm-1560 nm) combined with stable single frequency operation. Shot noise limited operation of this laser has been observed at frequencies greater than 300 MHz. At lower frequencies (1-300 MHz) the intensity noise has been characterized in terms of sidemode suppression ({dollar}>{dollar}60 dB of minimum sidemode suppression has been realized). Lower still (10 kHz-1 MHz) the intensity noise is dominated by the laser's relaxation resonance (30 kHz @ 1 mW output, {dollar}-{dollar}105 dBc/Hz). The linewidth of this laser has been measured to be less than 4 kHz using a loss compensated recirculating delayed self-heterodyne interferometer (RDSHI). The RDSHI is an improvement over the standard delayed self-heterodyne interferometer in that the effective delay line can be increased by a factor of 30 over the standard method, increasing the resolution by a corresponding amount. The RDSHI also allows measurement of the short term frequency jitter of a laser. In order to reduce laser frequency jitter, the Pound-Drever technique was employed to lock the laser frequency to an external fiber Fabry-Perot. The same technique also permitted the internal mode selection filter to track the laser frequency, completely eliminating residual mode hopping due to thermal length changes of the laser cavity. Finally, fiber laser configurations that allow multiple frequencies to be simultaneously produced in one laser cavity will be described.
机译:在1.5μm范围内运行的单频,低强度噪声,可广泛调谐的激光器在未来的波分复用光通信系统,光纤传感器阵列和高分辨率光谱测量中具有潜在的应用。将详细描述具有这些特性的单频光纤激光器。激光腔包含掺do光纤增益模块,确保单向行波操作的光纤隔离器和两个串联作用的Fabry-Perot光纤滤波器,它们提供宽带可调性(1530 nm-1560 nm)和稳定的单频运行。在高于300 MHz的频率下,已观察到该激光器的散粒噪声受限操作。在较低的频率(1-300 MHz)下,已根据侧模抑制来表征强度噪声(已实现60 dB的最小侧模抑制)。在较低的(10 kHz-1 MHz)下,强度噪声主要由激光器的弛豫共振(30 kHz @ 1 mW输出,{dollar}-{dollar} 105 dBc / Hz)决定。使用损耗补偿的再循环延迟自外差式干涉仪(RDSHI),已测量该激光器的线宽小于4 kHz。 RDSHI是对标准延迟自外差干涉仪的改进,其有效延迟线可以比标准方法增加30倍,从而将分辨率提高了相应的数量。 RDSHI还可以测量激光器的短期频率抖动。为了减少激光频率抖动,采用了Pound-Drever技术将激光频率锁定到外部光纤Fabry-Perot。相同的技术还允许内部模式选择滤波器跟踪激光频率,从而完全消除由于激光腔的热长度变化而引起的残留模式跳变。最后,将描述允许在一个激光腔中同时产生多个频率的光纤激光器配置。

著录项

  • 作者

    Dawson, Jay Walter.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Physics Optics.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1993
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;无线电电子学、电信技术;
  • 关键词

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