论文标题

一种新方法,用于在系外行星传输光谱的多上座观察中校正宿主星变异性

A new method to correct for host star variability in multi-epoch observations of exoplanet transmission spectra

论文作者

Panwar, Vatsal, Désert, Jean-Michel, Todorov, Kamen O., Bean, Jacob L., Stevenson, Kevin B., Huitson, C. M., Fortney, Jonathan J., Bergmann, Marcel

论文摘要

轨道活动恒星的透射射传光谱由于出色的光球异质性而遭受波长依赖性效应。 WASP-19b是一种超热的木星(T $ _ {eq} $ $ \ sim $ 2100 K),是一种如此强烈的辐照天然气巨型气体轨道,旋转活跃的太阳能型星。我们使用Gemini-South望远镜上的Gemini多对象光谱仪(GMO)介绍了在八个时期获得的WASP-19b的光学(520-900 nm)传输光谱。我们应用了最近开发的高斯流程基于回归的方法来对过境光曲线系统进行建模,并在每个时期提取传输频谱。我们发现WASP-19b的传输频谱受单个时期的出色变异性影响。我们报告了所有时期光谱的相对斜率和偏移之间观察到的反相关。这种反相关与前向传输模型的预测一致,该预测解释了先前针对WASP-19测量的未培养的恒星斑点和faculae的效果。我们引入了一种新方法,通过使用传输光谱和偏移之间观察到的相关性来纠正每个时期的这种出色的可变性效应。我们比较了我们的恒星变异性校正后的GMOS传输光谱与先前与WASP-19B的MOS测量相矛盾,并试图调和它们。我们还测量了WASP-19的宽带恒星变异性的幅度和时间尺度,我们发现这与GMOS光谱和地面宽带光度法长期监测中观察到的效果一致。我们的结果最终要谨慎,不要在校正每个时期的恒星变异性之前结合旋转活性恒星的多个上述光学传输光谱。

Transmission spectra of exoplanets orbiting active stars suffer from wavelength-dependent effects due to stellar photospheric heterogeneity. WASP-19b, an ultra-hot Jupiter (T$_{eq}$ $\sim$ 2100 K), is one such strongly irradiated gas-giant orbiting an active solar-type star. We present optical (520-900 nm) transmission spectra of WASP-19b obtained across eight epochs using the Gemini Multi-Object Spectrograph (GMOS) on the Gemini-South telescope. We apply our recently developed Gaussian Processes regression based method to model the transit light curve systematics and extract the transmission spectrum at each epoch. We find that WASP-19b's transmission spectrum is affected by stellar variability at individual epochs. We report an observed anticorrelation between the relative slopes and offsets of the spectra across all epochs. This anticorrelation is consistent with the predictions from the forward transmission models, which account for the effect of unocculted stellar spots and faculae measured previously for WASP-19. We introduce a new method to correct for this stellar variability effect at each epoch by using the observed correlation between the transmission spectral slopes and offsets. We compare our stellar variability corrected GMOS transmission spectrum with previous contradicting MOS measurements for WASP-19b and attempt to reconcile them. We also measure the amplitude and timescale of broadband stellar variability of WASP-19 from TESS photometry, which we find to be consistent with the effect observed in GMOS spectroscopy and ground-based broadband photometric long-term monitoring. Our results ultimately caution against combining multi-epoch optical transmission spectra of exoplanets orbiting active stars before correcting each epoch for stellar variability.

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