A Nonlinear Antiresonant GaP/AIP Multilayer Waveguide for Efficient, Surface-Emitted Optical Mixing

H. Dai, R. Normandin, A. Delâge
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Abstract

Surface-emitting nonlinear waveguide devices, based on coherent sum-frequency (SF) mixing of two counter-propagating guided waves, have attracted increasing interest for their potential applications in future high throughput all-optical fiber communication networks. Several authors have recently reported success with the proof-of-concept demonstrations of passive and laser-integrated nonlinear waveguide devices as wavelength sensors for frequency control of DFB lasers.[1], parametric spectrometers for DWDM demultiplexing [2] and serial-to-parallel-convertors for 100Gb/s TDM demultiplexing [3]. From the view point of practical systems implementation, one key parameter for these devices is the overall SF conversion efficiency because it ultimately dictates the signal-to-noise ratio and bit error rate (BER). For devices using quasi-phase-matched (QPM) AlGaAs multilayers structure, the efficiency is further affected by two somewhat related factors: the absorption of the SF light by the waveguide materials and the coupling efficiency of the input signal. Since the band gap of GaAs is smaller than the SF light photon energy for the wavelength that we are interested in, strong absorption occurs as the SF light propagating towards the waveguide surface. On the other hand, for thin guides, large mismatchs between waveguide thickness and fiber core size results large coupling losses. In order to improve the optical coupling, we have recently demonstrated a device employing a nonlinear antiresonant reflecting optical waveguide (NARROW) geometry [4]. The NARROW structure allows large coupling efficiency with fibers by providing a thick guiding core with high modal discrimination. We have obtained coupling efficiency of ~15% from a 8-μm core diameter fiber to a 2.6 μm thick NARROW device. Further improvement in coupling efficiency, however, is limited by the SF light absorption of the thick nonlinear layers.
一种用于高效表面发射光混合的非线性抗谐振GaP/AIP多层波导
基于两个反向传播导波的相干和频率混合(SF)的表面发射非线性波导器件在未来高通量全光纤通信网络中的潜在应用越来越受到人们的关注。几位作者最近成功地报道了无源和激光集成非线性波导器件作为DFB激光器频率控制波长传感器的概念验证演示。[1],用于DWDM解复用的参数光谱仪[2]和用于100Gb/s TDM解复用的串并转换器[3]。从实际系统实现的角度来看,这些器件的一个关键参数是整体顺频转换效率,因为它最终决定了信噪比和误码率(BER)。对于采用准相位匹配(QPM) AlGaAs多层结构的器件,效率进一步受到两个相关因素的影响:波导材料对SF光的吸收和输入信号的耦合效率。由于GaAs的带隙小于我们感兴趣的波长的SF光光子能量,因此SF光向波导表面传播时会发生强吸收。另一方面,对于薄波导,波导厚度和纤芯尺寸之间的大不匹配导致了大的耦合损失。为了改善光耦合,我们最近展示了一种采用非线性抗谐振反射光波导(NARROW)几何结构的器件[4]。窄结构通过提供具有高模态判别的厚导芯,允许与光纤的大耦合效率。我们获得了从8 μm芯径光纤到2.6 μm厚NARROW器件的耦合效率约为15%。然而,耦合效率的进一步提高受到了厚非线性层对顺频光吸收的限制。
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