论文标题

0类Protostellar内核中灰尘晶粒对齐的物理条件I.粉尘极化和分子辐照示踪剂的观察

Physical conditions for dust grain alignment in Class 0 protostellar cores I. Observations of dust polarization and molecular irradiation tracers

论文作者

Gouellec, Valentin J. M. Le, Maury, Anaëlle J., Hull, Charles L. H.

论文摘要

0类原恒星的高角度分辨率观测结果在这些幼体嵌入式物体的信封中产生了极化灰尘发射的详细地图。有趣的是,阿尔玛(Alma)带来的提高灵敏度揭示了巨大的极化部分动态范围,特定位置具有惊人的极化粉尘发射。我们的目的是表征晶粒对准条件和灰尘特性,这些特性是导致0类Protostars内部信封(〜1000 au)中观察到的极化粉尘发射的。我们分析了用ALMA获得的极化粉尘发射图,并将其与特定分子示踪剂(主要是CCH)的分子线发射图进行了比较,这使我们能够探测灰尘晶局部比对理论中的关键成分之一:辐照场。我们表明,CCH峰朝着流出腔壁的峰值,在该腔壁上也增强了极化的灰尘发射。我们的分析提供了极化强度和CCH发射的形态之间的暂定相关性,这表明在腔壁上撞击辐射场有利于这些地区的晶粒比对和暖碳链化学。我们建议,沿流出腔墙发生的冲击可能代表有助于灰尘晶粒对准的附加光子来源。然而,尽管没有观察到辐射驱动的化学反应,例如辐射扭矩在理论上不够有效,但赤道平面的某些部分(例如赤道平面)表现出增强的极化通量。这表明其他物理条件(例如源几何形状和灰尘粒的演化)可能在谷物对齐中起作用。

High angular resolution observations of Class 0 protostars have produced detailed maps of the polarized dust emission in the envelopes of these young embedded objects. Interestingly, the improved sensitivity brought by ALMA has revealed wide dynamic ranges of polarization fractions, with specific locations harboring surprisingly large amounts of polarized dust emission. Our aim is to characterize the grain alignment conditions and dust properties responsible for the observed polarized dust emission in the inner envelopes (~1000 au) of Class 0 protostars. We analyzed the polarized dust emission maps obtained with ALMA and compared them to molecular line emission maps of specific molecular tracers, mainly CCH, which allowed us to probe one of the key components in dust grain alignment theories: the irradiation field. We show that CCH peaks toward outflow cavity walls, where the polarized dust emission is also enhanced. Our analysis provides a tentative correlation between the morphology of the polarized intensity and CCH emission, suggesting that the radiation field impinging on the cavity walls favors both the grain alignment and the warm carbon chain chemistry in these regions. We propose that shocks happening along outflow cavity walls could potentially represent an additional source of photons contributing to dust grain alignment. However, some parts of the cores, such as the equatorial planes, exhibit enhanced polarized flux, although no radiation driven chemistry is observed, for example where radiative torques are theoretically not efficient enough. This suggests that additional physical conditions, such as source geometry and dust grain evolution, may play a role in grain alignment.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源