基于多模干扰耦合器的单片集成主振荡器功率放大器,可在 830 纳米附近实现双波长发射

IF 1.1 Q3 PHYSICS, MULTIDISCIPLINARY
A. Müller, J. Koester, L. S. Theurer, Jörg Fricke, H. Wenzel, Andrea C. Knigge, B. Sumpf
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引用次数: 0

摘要

本文介绍了一种基于单片集成双波长多模干涉耦合器的主振荡器功率放大器。它由两个浅蚀刻、横向分离的脊波导激光腔组成,作为主振荡器,以独立的分布式布拉格反射光栅作为腔镜。深蚀刻耦合部分包含 S 形弯曲波导和多模干涉耦合器,用于将主振荡器的激光发射耦合到作为功率放大器的浅蚀刻单波导中。改变耦合部分的蚀刻深度可实现紧凑的器件布局。此外,增大未耦合到功率放大器的模式的辐射角有助于抑制光束转向,否则,横向分离的远场强度分布就会显示出光束转向。该器件在单独和共同工作时可提供 0.5 W 的 830 nm 左右双波长发射。按照设计,两个发射波长之间的间隔为 0.5 nm,光谱宽度低于 20 pm,这受到光谱仪光谱分辨率的限制。在可用功率范围内,两个峰值波长都保持在 50 pm 的光谱窗口内。这样就能完全灵活地选择操作点,用于偏移激发拉曼差分光谱和通过光混合产生太赫兹发射等应用。此外,还可以通过在分布式布拉格反射光栅旁边的电阻器上施加加热器电流,对发射波长进行非连续调谐。例如,选定的光谱距离为 0.5 纳米、1.0 纳米、1.5 纳米和 2.0 纳米。近场宽度为 5 µm,远场角度为 17°,因此在所有工作模式下,光束传播比均为 1.4 (1/e2),可轻松实现光束整形或单模光纤耦合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Monolithically integrated multimode interference coupler-based master oscillator power amplifier with dual-wavelength emission around 830 nm
A monolithically integrated dual-wavelength multimode interference coupler-based master oscillator power amplifier is presented. It consists of two shallowly etched, laterally separated ridge waveguide laser cavities as master oscillators with individual distributed Bragg reflector gratings as cavity mirrors. A deeply etched coupling section containing S-bend shaped waveguides and a multimode interference coupler is used to couple the laser emission of the master oscillators into a shallowly etched single waveguide serving as power amplifier. Changing the etch depth for the coupling section enables a compact device layout. In addition, increased radiation angles of modes not coupled into the power amplifier help to suppress beam steering, otherwise indicated by laterally separated far-field intensity distributions. The device provides 0.5 W of dual-wavelength emission around 830 nm in individual and common operation. As designed, both emission wavelengths are separated by 0.5 nm with spectral widths below 20 pm, limited by the spectral resolution of the spectrometer. Both peak wavelengths remain within spectral windows of 50 pm within the available power range. This enables full flexibility selecting operating points for applications such as shifted excitation Raman difference spectroscopy and the generation of THz emission by photomixing. The emission wavelengths can additionally be non-continuously tuned by applying a heater current to resistors implemented next to the distributed Bragg reflector gratings. As an example, selected spectral distances of 0.5 nm, 1.0 nm, 1.5 nm, and 2.0 nm are demonstrated. Near field widths of 5 µm and far field angles of 17° result in beam propagation ratios of 1.4 (1/e2) in all operation modes and enable easy beam shaping or optical single-mode fiber coupling.
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来源期刊
Journal of Physics Communications
Journal of Physics Communications PHYSICS, MULTIDISCIPLINARY-
CiteScore
2.60
自引率
0.00%
发文量
114
审稿时长
10 weeks
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