Monat C, Ebnali-Heidari M, Grillet C, Corcoran B, Eggleton B J, White T P, O'Faolain L, Li J, Krauss T F
Centre for Ultrahigh-bandwidth Devices for Optical Systems, Institute for Photonics and Optical Sciences, School of Physics, University of Sydney, NSW 2006, Australia.
Opt Express. 2010 Oct 25;18(22):22915-27. doi: 10.1364/OE.18.022915.
We experimentally investigate four-wave mixing (FWM) in short (80 μm) dispersion-engineered slow light silicon photonic crystal waveguides. The pump, probe and idler signals all lie in a 14 nm wide low dispersion region with a near-constant group velocity of c/30. We measure an instantaneous conversion efficiency of up to -9dB between the idler and the continuous-wave probe, with 1W peak pump power and 6 nm pump-probe detuning. This conversion efficiency is found to be considerably higher (>10 × ) than that of a Si nanowire with a group velocity ten times larger. In addition, we estimate the FWM bandwidth to be at least that of the flat band slow light window. These results, supported by numerical simulations, emphasize the importance of engineering the dispersion of PhC waveguides to exploit the slow light enhancement of FWM efficiency, even for short device lengths.
我们通过实验研究了短(80μm)色散工程慢光硅光子晶体波导中的四波混频(FWM)。泵浦光、探测光和闲频光信号均位于一个14nm宽的低色散区域,群速度近乎恒定为c/30。在1W的峰值泵浦功率和6nm的泵浦-探测失谐条件下,我们测量到闲频光与连续波探测光之间的瞬时转换效率高达-9dB。发现该转换效率比群速度大十倍的硅纳米线的转换效率高得多(>10倍)。此外,我们估计四波混频带宽至少与平带慢光窗口的带宽相同。这些结果得到了数值模拟的支持,强调了设计光子晶体波导的色散以利用慢光增强四波混频效率的重要性,即使对于短器件长度也是如此。