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High-efficiency power transfer for silicon-based photonic devices

机译:硅基光子器件的高效功率传输

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We demonstrate an efficient coupling of guided light of 1550 nm from a standard single-mode optical fiber to a silicon waveguide using the finite-difference time-domain method and propose a fabrication method of tapered optical fibers for efficient power transfer to silicon-based photonic integrated circuits. Adiabatically-varying fiber core diameters with a small tapering angle can be obtained using the tube etching method with hydrofluoric acid and standard single-mode fibers covered by plastic jackets. The optical power transmission of the fundamental HE_(11) and TE-like modes between the fiber tapers and the inversely-tapered silicon waveguides was calculated with the finite-difference time-domain method to be more than 99% at a wavelength of 1550 nm. The proposed method for adiabatic fiber tapering can be applied in quantum optics, silicon-based photonic integrated circuits, and nanophotonics. Furthermore, efficient coupling within the telecommunication C-band is a promising approach for quantum networks in the future.
机译:我们演示了使用有限差分时域方法将1550 nm的引导光从标准单模光纤有效耦合到硅波导的方法,并提出了一种锥形光纤的制造方法,用于向硅基光子的有效功率传输集成电路。可以使用氢氟酸和标准单模光纤覆盖塑料外套的管蚀刻方法,获得具有较小锥角的绝热变化纤芯直径。用有限差分时域法计算出在光纤锥和反锥形硅波导之间的基本HE_(11)模式和TE模的光功率传输在1550 nm波长下大于99% 。所提出的用于绝热纤维渐缩的方法可以应用于量子光学,基于硅的光子集成电路和纳米光子学中。此外,电信C频段内的有效耦合是未来量子网络的一种有前途的方法。

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