Herrero-Bermello Alaine, Velasco Aitor V, Podmore Hugh, Cheben Pavel, Schmid Jens H, Janz Siegfried, Calvo María L, Xu Dan-Xia, Scott Alan, Corredera Pedro
Opt Lett. 2017 Jun 1;42(11):2239-2242. doi: 10.1364/OL.42.002239.
We present two techniques for mitigating the effects of temperature drifts in waveguide spatial heterodyne Fourier-transform on-chip spectrometers. In high-resolution devices, large optical path length differences result in an increased sensitivity to temperature variations and impose stringent requirements on the thermal stabilization system. In order to overcome this limitation, here we experimentally demonstrate two new temperature mitigation techniques based on a temperature-sensitive calibration and phase error correction. The spectrometer chip under analysis comprises an array of 32 Mach-Zehnder interferometers fabricated on a silicon-on-insulator platform. The optical path delays are implemented as microphotonic spirals of linearly increasing length up to 3.779 cm, yielding a spectral resolution of 17 pm. We demonstrate that the degradation in retrieved spectra caused by temperature drift is effectively eliminated by temperature-sensitive calibration and phase error correction.
我们提出了两种减轻波导空间外差傅里叶变换片上光谱仪中温度漂移影响的技术。在高分辨率设备中,较大的光程长度差异会导致对温度变化的敏感度增加,并对热稳定系统提出严格要求。为了克服这一限制,我们在此通过实验证明了两种基于温度敏感校准和相位误差校正的新的温度缓解技术。所分析的光谱仪芯片包括在绝缘体上硅平台上制造的32个马赫曾德尔干涉仪阵列。光程延迟通过长度线性增加至3.779厘米的微光子螺旋实现,产生17皮米的光谱分辨率。我们证明,通过温度敏感校准和相位误差校正,可以有效消除由温度漂移引起的恢复光谱的退化。