论文标题

涂层气体的工厂:通过FUV反馈的恒星形成效率有限的分子云

Factories of CO-dark gas: molecular clouds with limited star formation efficiencies by FUV feedback

论文作者

Inoguchi, Mutsuko, Hosokawa, Takashi, Mineshige, Shin, Kim, Jeong-Gyu

论文摘要

分子云中的恒星形成效率低下。年轻簇的电离EUV辐射($Hν\ geq 13.6 $ eV)被认为是限制恒星形成效率(SFE)的主要反馈效应。在这里,我们关注恒星FUV辐射(6 eV $ \ leqhν\ leq $ 13.6 eV)的影响。 FUV辐射可以通过光电加热进一步降低SFE,并且还会影响未转化为恒星(“云残余”)的气体的化学状态,通过分子的光解离。我们已经开发了一个一维半分析模型,该模型遵循HII区域的动力扩展过程中光解离区域(PDR)的热和化学结构的演变。我们研究了FUV反馈是如何限制SFE的,假设在温度高于阈值(例如100K)的PDR中淬灭恒星的形成。我们的模型预测,FUV反馈有助于减少巨大的SFE($ m _ {\ rm cl} \ gtrsim 10^5 m _ {\ odot} $)云具有低表面密度的云($σ_ {\ rm cl} \ rm cl} \ rm cl} \ lyssim 100 $ m $ m $ m $ $ _}此外,我们表明,云残留物中包含的H $ _2 $分子气的很大一部分应在FUV反馈下为广泛的云属性“共同黑暗”。因此,分散的分子云是涂层气体的潜在工厂,它返回星际介质的循环。

The star formation in molecular clouds is inefficient. The ionizing EUV radiation ($h ν\geq 13.6$ eV) from young clusters has been considered as a primary feedback effect to limit the star formation efficiency (SFE). We here focus on effects of the stellar FUV radiation (6 eV $\leq h ν\leq$ 13.6 eV) during the cloud disruption stage. The FUV radiation may further reduce the SFE via photoelectric heating, and it also affects the chemical states of the gas that is not converted to stars ("cloud remnants") via photodissociation of molecules. We have developed a one-dimensional semi-analytic model which follows the evolution of both the thermal and chemical structure of a photodissociation region (PDR) during the dynamical expansion of an HII region. We investigate how the FUV feedback limits the SFE, supposing that the star formation is quenched in the PDR where the temperature is above a threshold value (e.g., 100K). Our model predicts that the FUV feedback contributes to reduce the SFEs for the massive ($M_{\rm cl} \gtrsim 10^5 M_{\odot}$) clouds with the low surface densities ($Σ_{\rm cl} \lesssim 100$ M$_{\odot}$pc$^{-2}$). Moreover, we show that a large part of the H$_2$ molecular gas contained in the cloud remnants should be "CO-dark" under the FUV feedback for a wide range of cloud properties. Therefore, the dispersed molecular clouds are potential factories of the CO-dark gas, which returns into the cycle of the interstellar medium.

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