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A Thermally Wavelength-tunable Photonic Switch Based on Silicon Microring Resonator

机译:基于硅微环谐振器的热波长可调谐光开关

摘要

Silicon photonics is a very promising technology for future low-cost high-bandwidth optical telecommunication applications down to the chip level. This is due to the high degree of integration, high optical bandwidth and large speed coupled with the development of a wide range of integrated optical functions. Silicon-based microring resonators are a key building block that can be used to realize many optical functions such as switching, multiplexing, demultiplaxing and detection of optical wave. The ability to tune the resonances of the microring resonators is highly desirable in many of their applications. In this work, the study and application of a thermally wavelength-tunable photonic switch based on silicon microring resonator is presented. Devices with 10µm diameter were systematically studied and used in the design. Its resonance wavelength was tuned by thermally induced refractive index change using a designed local micro-heater. While thermo-optic tuning has moderate speed compared with electro-optic and all-optic tuning, with silicon’s high thermo-optic coefficient, a much wider wavelength tunable range can be realized. The device design was verified and optimized by optical and thermal simulations. The fabrication and characterization of the device was also implemented. The microring resonator has a measured FSR of ~18 nm, FWHM in the range 0.1-0.2 nm and Q around 10,000. A wide tunable range (u3e6.4 nm) was achieved with the switch, which enables dense wavelength division multiplexing (DWDM) with a channel space of 0.2nm. The time response of the switch was tested on the order of 10 us with a low power consumption of ~11.9mW/nm. The measured results are in agreement with the simulations. Important applications using the tunable photonic switch were demonstrated in this work. 1×4 and 4×4 reconfigurable photonic switch were implemented by using multiple switches with a common bus waveguide. The results suggest the feasibility of on-chip DWDM for the development of large-scale integrated photonics. Using the tunable switch for output wavelength control, a fiber laser was demonstrated with Erbium-doped fiber amplifier as the gain media. For the first time, this approach integrated on-chip silicon photonic wavelength control.
机译:对于未来的低成本高带宽光通信应用,直到芯片级,硅光子学是一项非常有前途的技术。这是由于高度集成,高光带宽和高速度以及广泛集成光学功能的发展所致。基于硅的微环谐振器是关键构建块,可用于实现许多光学功能,例如切换,复用,解复用和检测光波。在微环谐振器的许多应用中,非常需要调节微环谐振器的谐振的能力。在这项工作中,提出了一种基于硅微环谐振器的热波长可调光子开关的研究与应用。系统地研究了直径为10μm的设备并将其用于设计中。使用设计的局部微型加热器,通过热致折射率的变化来调节其共振波长。尽管与电光和全光调谐相比,热光调谐的速度要适中,但由于硅具有很高的热光系数,因此可以实现更宽的波长可调范围。通过光学和热仿真验证并优化了器件设计。该设备的制造和特性也得以实现。微环谐振器的实测FSR为〜18 nm,FWHM在0.1-0.2 nm范围内,Q约为10,000。该开关可实现宽的可调范围(u6.43 nm),从而可实现具有0.2nm通道空间的密集波分复用(DWDM)。开关的时间响应在10 us的数量级上进行了测试,功耗低至〜11.9mW / nm。测量结果与模拟结果一致。这项工作演示了使用可调光子开关的重要应用。通过使用具有公共总线波导的多个开关来实现1×4和4×4可重构光子开关。结果表明片上DWDM在大规模集成光子学开发中的可行性。使用可调开关进行输出波长控制,演示了一种掺laser光纤放大器作为增益介质的光纤激光器。该方法首次将片上硅光子波长控制集成在一起。

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    Wang Xuan;

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  • 年度 2009
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