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连续波拉曼硅激光器。

A continuous-wave Raman silicon laser.

作者信息

Rong Haisheng, Jones Richard, Liu Ansheng, Cohen Oded, Hak Dani, Fang Alexander, Paniccia Mario

机构信息

Intel Corporation, 2200 Mission College Blvd, CHP3-109, Santa Clara, California 95054, USA.

出版信息

Nature. 2005 Feb 17;433(7027):725-8. doi: 10.1038/nature03346.

Abstract

Achieving optical gain and/or lasing in silicon has been one of the most challenging goals in silicon-based photonics because bulk silicon is an indirect bandgap semiconductor and therefore has a very low light emission efficiency. Recently, stimulated Raman scattering has been used to demonstrate light amplification and lasing in silicon. However, because of the nonlinear optical loss associated with two-photon absorption (TPA)-induced free carrier absorption (FCA), until now lasing has been limited to pulsed operation. Here we demonstrate a continuous-wave silicon Raman laser. Specifically, we show that TPA-induced FCA in silicon can be significantly reduced by introducing a reverse-biased p-i-n diode embedded in a silicon waveguide. The laser cavity is formed by coating the facets of the silicon waveguide with multilayer dielectric films. We have demonstrated stable single mode laser output with side-mode suppression of over 55 dB and linewidth of less than 80 MHz. The lasing threshold depends on the p-i-n reverse bias voltage and the laser wavelength can be tuned by adjusting the wavelength of the pump laser. The demonstration of a continuous-wave silicon laser represents a significant milestone for silicon-based optoelectronic devices.

摘要

在硅中实现光增益和/或激光发射一直是硅基光子学中最具挑战性的目标之一,因为块状硅是一种间接带隙半导体,因此光发射效率非常低。最近,受激拉曼散射已被用于证明硅中的光放大和激光发射。然而,由于与双光子吸收(TPA)诱导的自由载流子吸收(FCA)相关的非线性光学损耗,到目前为止,激光发射仅限于脉冲操作。在此,我们展示了一种连续波硅拉曼激光器。具体而言,我们表明,通过在硅波导中引入一个反向偏置的p-i-n二极管,可以显著降低硅中TPA诱导的FCA。激光腔是通过在硅波导的端面上涂覆多层介质膜形成的。我们已经展示了稳定的单模激光输出,边模抑制超过55 dB,线宽小于80 MHz。激光阈值取决于p-i-n反向偏置电压,并且激光波长可以通过调整泵浦激光的波长来调谐。连续波硅激光器的展示代表了硅基光电器件的一个重要里程碑。

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