论文标题

通过Quijote Line调查发现TMC-1中的Fulvenallene

Discovery of fulvenallene in TMC-1 with the QUIJOTE line survey

论文作者

Cernicharo, José, Fuentetaja, Raúl, Agúndez, Marcelino, Kaiser, Ralf I., Cabezas, Carlos, Marcelino, Nuria, Tercero, Belén, Pardo, Juan R., de Vicente, Pablo

论文摘要

我们通过Quijote Line调查报告了TMC-1方向的Fulvenallene($ C $ -C $ _5 $ _4 $ _4 $ _4 $ _4 $ _4 $ CCH $ _2 $)的检测。 $ k_a $ = 0,1,2,3和$ j $ = 9-15的30个旋转过渡已被检测到。数据的最佳旋转温度拟合为9 \,k,派生的色谱柱密度为(2.7 $ \ pm $ 0.3)$ \ times $ 10 $^{12} $ cm $ $^{ - 2} $,仅是其潜在的cyclopentadiene($ c $ -c $ -c $ _5 $ _5 $ _5 $ _5 $ _6 66)的4.4倍。环戊烯的乙基衍生物。我们搜索了fulvene($ c $ -c $ _5 $ h $ _4 $ ch $ _2 $),a ch $ _2 $ cyclopentadiene的衍生物,为此,我们为其柱密度的3 $σ$上限(3.5 $ \ pm $ 0.5)$ \ pm $ 0.5)$ \ times $ 10 $ \ \^$ 10 $^{12} $ cm^$ cm cm c.还获得了甲苯(c $ _6 $ h $ _5 $ ch $ _3 $)和苯乙烯(c $ _6 $ _6 $ h $ _5 $ _5 $ _2 $ _2 $ h $ _3 $),苯基和乙烯基衍生物的上限。 fulvenallene和Ethynyl环戊二烯可能是在环戊二烯($ c $ -c $ _5 $ _5 $ h $ _6 $)和ehtynyl激进分子(CCH)之间形成的。然而,TMC-1中循环的自下而上的气相合成低估了两个数量级的环戊二烯的丰度,这加剧了在寒冷的暗云环境(例如TMC-1)中研究所有可能的化学途径的需求。但是,在c $ _3 $ h $ _3^+$和c $ _2 $ h $ _4 $之间的反应包括在模型和观察到的丰度之间产生良好的协议。

We report the detection of fulvenallene ($c$-C$_5$H$_4$CCH$_2$) in the direction of TMC-1 with the QUIJOTE line survey. Thirty rotational transitions with $K_a$=0,1,2,3 and $J$=9-15 were detected. The best rotational temperature fitting of the data is 9\,K and a derived column density is (2.7$\pm$0.3)$\times$10$^{12}$ cm$^{-2}$, which is only a factor of 4.4 below that of its potential precursor cyclopentadiene ($c$-C$_5$H$_6$), and 1.4--1.9 times higher than that of the ethynyl derivatives of cyclopentadiene. We searched for fulvene ($c$-C$_5$H$_4$CH$_2$), a CH$_2$ derivative of cyclopentadiene, for which we derive a 3$σ$ upper limit to its column density of (3.5$\pm$0.5)$\times$10$^{12}$ cm$^{-2}$. Upper limits were also obtained for toluene (C$_6$H$_5$CH$_3$) and styrene (C$_6$H$_5$C$_2$H$_3$), the methyl and vinyl derivatives of benzene. Fulvenallene and ethynyl cyclopentadiene are likely formed in the reaction between cyclopentadiene ($c$-C$_5$H$_6$) and the ehtynyl radical (CCH). However, the bottom-up gas-phase synthesis of cycles in TMC-1 underestimates the abundance of cyclopentadiene by two orders of magnitude, which strengthens the need to study all possible chemical pathways to cyclisation in cold dark cloud environments, such as TMC-1. However, the inclusion of the reaction between C$_3$H$_3^+$ and C$_2$H$_4$ produces a good agreement between model and observed abundances.

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