论文标题
使用光子光谱仪模拟系外行星的研究
Simulating the Study of Exoplanets Using Photonic Spectrographs
论文作者
论文摘要
光子光谱仪为天文学光谱提供了高度微型,柔性和稳定的片溶液,可用于各种科学案例,例如确定系外行星的大气组成,以了解其可居住性,形成和进化。阵列的波导光栅(AWG)表现出将用作天体光谱仪的最佳前途。我们开发了一种公开可用的工具,以对AWG在频谱分析系外行星气氛中的能力进行初步检查。我们得出了LSF的波长和LSF的全宽度(FWHM)的函数的函数,该函数是光谱线宽度的函数,以评估离散且连续添加的低分辨率AWG的响应(R $ $ $ \ sim $ 1000)。我们观察到LSF具有最小的波长依赖性($ \ sim $ 5 \%),而与先前的假设相反,与AWG通道的中心波长相反。我们进一步证实,观察到的FWHM与发射线宽度线性缩放。最后,我们以离散和连续采样的低分辨率AWG对样品分子吸收光谱进行了模拟提取。从中,我们表明,虽然离散AWG符合其预期的解决能力,但原则上,连续的AWG光谱仪可以比离散AWG实现有效分辨率明显更高($ \ sim $ 2X)。对AWG的详细检查将是基础,用于将未来的AWG光谱仪为天文学案例(例如系外行星氛围)进行。
Photonic spectrographs offer a highly miniaturized, flexible, and stable on-chip solution for astronomical spectroscopy and can be used for various science cases such as determining the atmospheric composition of exoplanets to understand their habitability, formation, and evolution. Arrayed Waveguide Gratings (AWGs) have shown the best promise to be used as an astrophotonic spectrograph. We developed a publically-available tool to conduct a preliminary examination of the capability of the AWGs in spectrally resolving exoplanet atmospheres. We derived the Line-Spread-Function (LSF) as a function of wavelength and the Full-Width-at-Half-Maximum (FWHM) of the LSF as a function of spectral line width to evaluate the response of a discretely- and continuously-sampled low-resolution AWG (R $\sim$ 1000). We observed that the LSF has minimal wavelength dependence ($\sim$5\%), irrespective of the offset with respect to the center-wavelengths of the AWG channels, contrary to the previous assumptions. We further confirmed that the observed FWHM scales linearly with the emission line width. Finally, we present simulated extraction of a sample molecular absorption spectrum with the discretely- and continuously-sampled low-resolution AWGs. From this, we show that while the discrete AWG matches its expected resolving power, the continuous AWG spectrograph can, in principle, achieve an effective resolution significantly greater ($\sim$ 2x) than the discrete AWG. This detailed examination of the AWGs will be foundational for future deployment of AWG spectrographs for astronomical science cases such as exoplanet atmospheres.