论文标题

多上两口高分辨率互相关系谱的对比度和温度依赖性

Contrast and Temperature Dependence of Multi-Epoch High-Resolution Cross-Correlation Exoplanet Spectroscopy

论文作者

Finnerty, Luke, Buzard, Cam, Pelletier, Stefan, Piskorz, Danielle, Lockwood, Alexandra C., Bender, Chad F., Benneke, Björn, Blake, Geoffrey A.

论文摘要

虽然高分辨率互相关光谱(HRCC)技术已被证明有效地表征了过境和非传输热木星的大气,但这些技术的局限性尚不清楚。我们提出了一系列对一种HRCC技术的模拟,该模拟结合了多个时期的互相关函数,以首次将温度和对比度限制在可访问的系外行星种群上。我们发现,在$ l $ band中的当前仪器中,可能可以检测到大约土星大小的行星,并且在$ \ sim $ 0.2 $ 0.2 au之内可能会被检测到,这与先前研究的人口相比是显着的扩展。冷却器($ \ rm t_ {eq} \ leq 1000 $ k)系外行星比单独的光度对比度所暗示的化学变化更大,这会增加光谱对比度。 $ l $ -band ch $ _4 $冷却器系外行星频谱在$ \ rm t_ {eq} \ sim 900k $上对大气中的c/o比对热jupiter的限制进行了强大的约束。这些结果表明,HRCCS的多个上述方法可以检测并表征整个具有现有高分辨率光谱仪的太阳状系统的内部区域的系外行星大气。我们发现,许多适度的信号到噪声的时期($ \ rm s/n_ {epoch} \ sim 1500 $)产生了对C/O的最清晰检测和约束,强调需要使用短整合时间进行高精度近交易矫正校正。

While high-resolution cross-correlation spectroscopy (HRCCS) techniques have proven effective at characterizing the atmospheres of transiting and non-transiting hot Jupiters, the limitations of these techniques are not well understood. We present a series of simulations of one HRCCS technique, which combines the cross-correlation functions from multiple epochs, to place temperature and contrast limits on the accessible exoplanet population for the first time. We find that planets approximately Saturn-size and larger within $\sim$0.2 AU of a Sun-like star are likely to be detectable with current instrumentation in the $L$-band, a significant expansion compared with the previously-studied population. Cooler ($ \rm T_{eq} \leq 1000$ K) exoplanets are more detectable than suggested by their photometric contrast alone as a result of chemical changes which increase spectroscopic contrast. The $L$-band CH$_4$ spectrum of cooler exoplanets enables robust constraints on the atmospheric C/O ratio at $\rm T_{eq} \sim 900K$, which have proven difficult to obtain for hot Jupiters. These results suggest that the multi-epoch approach to HRCCS can detect and characterize exoplanet atmospheres throughout the inner regions of Sun-like systems with existing high-resolution spectrographs. We find that many epochs of modest signal-to-noise ($\rm S/N_{epoch} \sim 1500$) yield the clearest detections and constraints on C/O, emphasizing the need for high-precision near-infrared telluric correction with short integration times.

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