论文标题
22 Myr Old Planet au mic b的自旋角和大气逃逸的限制
Limits on the Spin-Orbit Angle and Atmospheric Escape for the 22 Myr-old Planet AU Mic b
论文作者
论文摘要
我们在其海王星大小的行星的转运期间获得了前序列星AU显微镜的光谱,以研究其轨道和大气。我们在Subaru望远镜上使用了高分散的近红外光谱仪IRD来检测地球上的多普勒“阴影”,并限制了预计的恒星斜率。观察到的行星多普勒阴影的建模表明系统的自旋轨道对齐($λ= -4.7 _ { - 6.4}^{+6.8} $度),但是需要进行其他观察以确认这一发现。我们同时使用在Keck-II上使用NIRSPEC获得的IRD数据和光谱来在1083 nm的亚稳态三胞胎线中寻找吸收。使用此限制和Parker风模型,我们将从大气的逃逸率限制为$ <0.15-0.45 \,M _ {\ oplus} $ Gyr $^{ - 1} $,可与XUV能量限制的逃生计算和水力动力学模型所预测的速率相当,但需要严格的地球测试。
We obtained spectra of the pre-main sequence star AU Microscopii during a transit of its Neptune-sized planet to investigate its orbit and atmosphere. We used the high-dispersion near-infrared spectrograph IRD on the Subaru telescope to detect the Doppler "shadow" from the planet and constrain the projected stellar obliquity. Modeling of the observed planetary Doppler shadow suggests a spin-orbit alignment of the system ($λ=-4.7_{-6.4}^{+6.8}$ degrees), but additional observations are needed to confirm this finding. We use both the IRD data and spectra obtained with NIRSPEC on Keck-II to search for absorption in the 1083 nm line of metastable triplet He I by the planet's atmosphere and place an upper limit for the equivalent width of 3.7 mÅat 99 $\%$ confidence. With this limit and a Parker wind model we constrain the escape rate from the atmosphere to $<0.15-0.45\, M_{\oplus}$ Gyr$^{-1}$, comparable to the rates predicted by an XUV energy-limited escape calculation and hydrodynamic models, but refinement of the planet mass is needed for rigorous tests.