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Wavelength-selectable microarray light sources for wide-band DWDM applications

机译:宽带DWDM应用的波长选择微阵列光源

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Tunable/selectable-wavelength light sources are beginning to play important roles in dense wavelength-division-multiplexing (DWDM) optical transmission systems. Of the many types of tunable/selectable light sources, we have chosen to develop distributed-feedback (DFB) laser-diode (LD)-array-based "wavelength-selectable" light sources (WSLs) because of their stable and reliable wavelength properties. This paper reviews our recent progress on eight-DFB-LD array WSLs and WSL modules for wide-band DWDM applications. We took full advantage of an advanced form of selective metal-organic-vapor-phase epitaxy (MOVPE), which we call microarray selective epitaxy (MASE), to simultaneously fabricate six types of WSL on two wafers so as to fully cover the S-, C-, and L-bands. These WSLs demonstrated a tunable wavelength range (ΔΛ) of 15 nm, a high fiber output power of up to about 10 mW, and stable single-mode lasing properties with a side-mode-suppression-ratio greater than 42 dB. We also describe a 94-channel (50-GHz spacing) WSL module that features an integrated multiwavelength locker. A WSL with a band-covering tuning range, i.e., a ΔΛ of 40 nm in the L-band, was installed with a compact wavelength locker in a 12.7 mm×20.8 mm standard-size 22-pin butterfly package. The WSL module has a stable wavelength locking capability with spectral fluctuations of less than 1 pm and less than +/-5 pm against passage of time and variations in case temperature, respectively.
机译:可调/可选波长光源开始在密集的波分复用(DWDM)光传输系统中发挥重要作用。在许多类型的可调/可选光源中,由于它们稳定且可靠的波长特性,我们选择开发基于分布式反馈(DFB)激光二极管(LD)阵列的“波长可选”光源(WSL) 。本文回顾了我们最近在宽带DWDM应用的8-DFB-LD阵列WSL和WSL模块方面的进展。我们充分利用了先进的选择性金属-有机蒸气相外延(MOVPE)形式(我们称为微阵列选择性外延(MASE)),可以在两个晶片上同时制造六种WSL,从而完全覆盖S- ,C波段和L波段。这些WSL表现出15 nm的可调波长范围(ΔΛ),高达约10 mW的高光纤输出功率,以及稳定的单模激光发射特性,其侧模抑制比大于42 dB。我们还描述了一个94通道(间隔为50 GHz)的WSL模块,该模块具有集成的多波长储物柜。在12.7 mm×20.8 mm标准尺寸的22针蝶形封装中安装了具有窄带调谐范围(即L波段的ΔΛ为40 nm)的WSL,带有紧凑的波长锁定器。 WSL模块具有稳定的波长锁定能力,其光谱波动分别小于1 pm和小于+/- 5 pm,分别针对时间的流逝和外壳温度的变化。

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