论文标题

氧化石墨烯2D膜与纳米线和环谐振器集成,以增强非线性光学元件

Graphene oxide 2D films integrated with nanowires and ring resonators for enhanced nonlinear optics

论文作者

Moss, David J.

论文摘要

我们通过通过实验演示引入分层的二维(2D)氧化石墨烯(GO)膜,报告了纳米线,波导和环共振器中增强的非线性光学元件。 GO膜被整合在硅启用器纳米线(SOI)上,高指数掺杂的硅胶玻璃和氮化硅(SIN)波导和微孔共振器(MRRS),以证明改进的光学非线性,包括Kerr非线性和四波混合(FWM)。通过使用带有光刻和升降过程的大面积,无转移的逐层GO涂层方法,我们将GO膜整合在这些互补的金属氧化物 - 氧化物 - 症状导向器(CMOS) - 兼容设备上。对于SOI纳米线,观察到由自相度调制(SPM)诱导的Go涂层SOI纳米线中光脉冲的显着光谱扩大,对于具有图案化膜(包括10层GO)的设备的高光谱扩展因子为4.34。还可以实现硅纳米线的非线性功绩(FOM)的显着增强,达到了20倍,从而导致FOM> 5。对于Hydex和Sin WaveGuides,可以在Go涂层的波导中增强FWM,从而在其中增强了转换效率(CE)的6.9 db和6.9 db和9.1 db的wave db和9.1 db的浪潮。对于MRR,由于谐振效果,在FWM CE中增加了〜10.3 dB。这些结果揭示了GO膜的强大潜力,可以改善纳米线,波导和环谐振器的非线性光学元件。

We report enhanced nonlinear optics in nanowires, waveguides, and ring resonators by introducing layered two-dimensional (2D) graphene oxide (GO) films through experimental demonstration. The GO films are integrated on silicon-on-insulator nanowires (SOI), high index doped silica glass, and silicon nitride (SiN) waveguides and microring resonators (MRRs), to demonstrate an improved optical nonlinearity including Kerr nonlinearity and four-wave mixing (FWM). By using a large-area, transfer-free, layer-by-layer GO coating method with photolithography and lift-off processes, we integrate GO films on these complementary metal-oxide-semiconductor (CMOS)-compatible devices. For SOI nanowires, significant spectral broadening of optical pulses in GO-coated SOI nanowires induced by self-phase modulation (SPM) is observed, achieving a high spectral broadening factor of 4.34 for a device with a patterned film including 10 layers of GO. A significant enhancement in the nonlinear figure of merit (FOM) for silicon nanowires by a factor of 20 is also achieved, resulting in a FOM > 5. For Hydex and SiN waveguides, enhanced FWM in the GO-coated waveguides is achieved, where conversion efficiency (CE) enhancements of up to 6.9 dB and 9.1 dB relative to the uncoated waveguides. For MRRs, an increase of up to ~10.3 dB in the FWM CE is achieved due to the resonant enhancement effect. These results reveal the strong potential of GO films to improve the nonlinear optics of nanowires, waveguides, and ring resonators.

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