Stoll Andreas, Madhav Kalaga V, Roth Martin M
Opt Express. 2021 Aug 2;29(16):24947-24971. doi: 10.1364/OE.430794.
We present an experimental study on our first generation of custom-developed arrayed waveguide gratings (AWG) on a silica platform for spectroscopic applications in near-infrared astronomy. We provide a comprehensive description of the design, numerical simulation and characterization of several AWG devices aimed at spectral resolving powers of 15,000-60,000 in the astronomical H-band. We evaluate the spectral characteristics of the fabricated devices in terms of insertion loss and estimated spectral resolving power and compare the results with numerical simulations. We estimate resolving powers of up to 18,900 from the output channel 3-dB transmission bandwidth. Based on the first characterization results, we select two candidate AWGs for further processing by removal of the output waveguide array and polishing the output facet to optical quality with the goal of integration as the primary diffractive element in a cross-dispersed spectrograph. We further study the imaging properties of the processed AWGs with regards to spectral resolution in direct imaging mode, geometry-related defocus aberration, and polarization sensitivity of the spectral image. We identify phase error control, birefringence control, and aberration suppression as the three key areas of future research and development in the field of high-resolution AWG-based spectroscopy in astronomy.
我们展示了一项关于第一代在二氧化硅平台上定制开发的阵列波导光栅(AWG)的实验研究,该光栅用于近红外天文学的光谱应用。我们全面描述了几种AWG器件的设计、数值模拟和特性,这些器件旨在在天文H波段实现15,000 - 60,000的光谱分辨能力。我们根据插入损耗和估计的光谱分辨能力评估了所制造器件的光谱特性,并将结果与数值模拟进行了比较。我们从输出通道3 dB传输带宽估计出高达18,900的分辨能力。基于首次表征结果,我们选择了两个候选AWG进行进一步处理,即去除输出波导阵列并将输出面抛光至光学质量,目标是将其集成作为交叉色散光谱仪中的主要衍射元件。我们进一步研究了处理后的AWG在直接成像模式下的光谱分辨率、与几何形状相关的散焦像差以及光谱图像的偏振敏感性等成像特性。我们确定相位误差控制、双折射控制和像差抑制是基于高分辨率AWG的天文学光谱学领域未来研究和开发的三个关键领域。