论文标题

超新星残留W49B内外异常高的HCO+/CO比率

Unusually high HCO+/CO ratios in and outside supernova remnant W49B

论文作者

Zhou, Ping, Zhang, Gao-Yuan, Zhou, Xin, Arias, Maria, Koo, Bon-Chul, Vink, Jacco, Zhang, Zhi-Yu, Sun, Lei, Du, Fu-Jun, Zhu, Hui, Chen, Yang, Bovino, Stefano, Lee, Yong-Hyun

论文摘要

银河系超新星残留物(SNR)及其环境提供了最近研究SN反馈的实验室。我们对X射线频带中最具发光的银河系SNR进行了分子观测,旨在探索附近分子云(MCS)上SNR的多个反馈通道的迹象。我们在SNR西南部发现了非常广泛的HCO+线条,其宽度为DV = 48--75 km/s,提供了有力的证据,表明W49B以$ v_ {lsr} = 61 $ -65 $ -65 km/s的系统性速度扰动MCS,并以W49B的距离为7.9 $ 7.9 $ 0.6 $ KPC。我们观察到HCO+ J = 1-0/CO j = 1-0的异常高强度比不仅在震惊的区域($ 1.1 \ pm 0.4 $和$ 0.70 \ pm 0.16 $),而且在静态云中,距SNR的东部边界(> 0.2)在静态云中也超过1 pc。通过与磁流失动力学的冲击模型进行比较,我们解释了宽线区域的高比率可以是由于震惊的MC中的宇宙射线(CR)诱导的化学作用,在震惊的MC中,Cr离子化速率提高到了银河系水平的10--100倍。 SNR以外的高HCO+/CO比可能是由辐射前体引起的,而W49B的发光X射线发射可以解释该区域中的一些特性。上述结果提供了观察性证据,表明SNR可以通过冲击,CRS和辐射强烈影响冲击边界内外的分子化学。我们建议HCO+/CO比率是探测SNR对MCS的多通道影响的潜在有用工具。

Galactic supernova remnants (SNRs) and their environments provide the nearest laboratories to study SN feedback. We performed molecular observations toward SNR W49B, the most luminous Galactic SNR in the X-ray band, aiming to explore signs of multiple feedback channels of SNRs on nearby molecular clouds (MCs). We found very broad HCO+ lines with widths of dv = 48--75 km/s in the SNR southwest, providing strong evidence that W49B is perturbing MCs at a systemic velocity of $V_{LSR}=61$--65 km/s, and placing W49B at a distance of $7.9\pm 0.6$ kpc. We observed unusually high-intensity ratios of HCO+ J=1-0/CO J=1-0 not only at shocked regions ($1.1\pm 0.4$ and $0.70\pm 0.16$), but also in quiescent clouds over 1 pc away from the SNR's eastern boundary (> 0.2). By comparing with the magnetohydrodynamics shock models, we interpret that the high ratio in the broad-line regions can result from a cosmic-ray (CR) induced chemistry in shocked MCs, where the CR ionization rate is enhanced to around 10--100 times of the Galactic level. The high HCO+/CO ratio outside the SNR is probably caused by the radiation precursor, while the luminous X-ray emission of W49B can explain a few properties in this region. The above results provide observational evidence that SNRs can strongly influence the molecular chemistry in and outside the shock boundary via their shocks, CRs, and radiation. We propose that the HCO+/CO ratio is a potentially useful tool to probe an SNR's multichannel influence on MCs.

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