论文标题
IA型超新星2021AEFX的JWST近红外和中红外的Nebular光谱
A JWST Near- and Mid-Infrared Nebular Spectrum of the Type Ia Supernova 2021aefx
论文作者
论文摘要
我们向附近正常类型IA Supernova SN 2021AEFX的JWST介绍JWST的近红外光谱观测,在$+255 $ 255美元以前的最大光中。我们的近红外光谱仪(NIRSPEC)和中红外仪器(MIRI)观察结果与南非大型望远镜(SALT)的地面光学数据相结合,构成了第一个完整的光学$+$ NIR $+$ NIR $+$+$ MIR NEBULAR NEBULAR SN IA SN IA SNEPRUM覆盖0.3 $ -14 $ 14 $ m $ m。该频谱揭示了先前未观察到的2.5 $ - $ 5 $μ$ m的区域,揭示了坚固的螺旋铁和稳定的镍发射,这表明高密度燃烧可能会限制祖细胞质量。与以前的Spitzer miR数据相比,数据显示灵敏度和分辨率有显着改善。我们从铁组元素以及中间质量元素氩的线中鉴定出许多NIR和miR nebular发射线。与铁组元件相比,氩线扩展到更高的速度,这表明分层的弹出是延迟plateation的标志或双重测量SN IA模型的标志。我们向简单的几何线概况介绍了1.2 $ $ m以上的功能,并发现大多数线与高斯或球形发射分布一致,而[AR III] 8.99 $μ$ m线的线条具有独特的平面型材,指示厚的球形壳。使用我们的线轮廓拟合,我们研究了SN 2021AEFX的发射率结构并测量运动学特性。持续观察SN 2021AEFX和其他具有JWST的SNE IA将转化为SN IA组成,电离结构,密度和温度的研究,并将对SN IA祖细胞和爆炸模型提供重要限制。
We present JWST near- and mid-infrared spectroscopic observations of the nearby normal Type Ia supernova SN 2021aefx in the nebular phase at $+255$ days past maximum light. Our Near Infrared Spectrograph (NIRSpec) and Mid Infrared Instrument (MIRI) observations, combined with ground-based optical data from the South African Large Telescope (SALT), constitute the first complete optical $+$ NIR $+$ MIR nebular SN Ia spectrum covering 0.3$-$14 $μ$m. This spectrum unveils the previously unobserved 2.5$-$5 $μ$m region, revealing strong nebular iron and stable nickel emission, indicative of high-density burning that can constrain the progenitor mass. The data show a significant improvement in sensitivity and resolution compared to previous Spitzer MIR data. We identify numerous NIR and MIR nebular emission lines from iron-group elements and as well as lines from the intermediate-mass element argon. The argon lines extend to higher velocities than the iron-group elements, suggesting stratified ejecta that are a hallmark of delayed-detonation or double-detonation SN Ia models. We present fits to simple geometric line profiles to features beyond 1.2 $μ$m and find that most lines are consistent with Gaussian or spherical emission distributions, while the [Ar III] 8.99 $μ$m line has a distinctively flat-topped profile indicating a thick spherical shell of emission. Using our line profile fits, we investigate the emissivity structure of SN 2021aefx and measure kinematic properties. Continued observations of SN 2021aefx and other SNe Ia with JWST will be transformative to the study of SN Ia composition, ionization structure, density, and temperature, and will provide important constraints on SN Ia progenitor and explosion models.