论文标题
旋转冷CH $^{+} $的分离重组率系数的实验确定及其对弥漫性云化学的影响
Experimental determination of the dissociative recombination rate coefficient for rotationally-cold CH$^{+}$ and its implications for the diffuse cloud chemistry
论文作者
论文摘要
Ch $^+$的观察用于追踪弥漫云的物理特性,但这需要对基础CH $^+$化学的准确理解。在这项工作之前,该化学反应最不确定的反应是Ch $^+$的解离重组(DR)。使用电子离子合并的梁在低温存储环上实验,我们确定了CH $^+$电子,振动和旋转基态的DR速率系数,适用于不同的分散云条件。我们的结果将CH $^+$ DR速率系数的先前未知的量度不确定性减少到$ \ sim \ pm 20 \%$ $,并且适用于与弥漫性云有关的所有温度,范围从静态气体到局部通过诸如冲击和诸如冲击和湍流等过程的气体。基于简单的化学网络,我们发现DR可以成为与静态气体相关的温度下的重要破坏机制。随着温度在局部的升高,DR可以继续对$ \ sim 600 \,\ Mathrm {K} $的温度重要,如果气体的电子分数也相应增加。我们新的CH $^+$ DR速率系数数据将通过CH $^+$丰度观察提高弥漫性云物理特性的未来研究的可靠性。
Observations of CH$^+$ are used to trace the physical properties of diffuse clouds, but this requires an accurate understanding of the underlying CH$^+$ chemistry. Until this work, the most uncertain reaction in that chemistry was dissociative recombination (DR) of CH$^+$. Using an electron-ion merged-beams experiment at the Cryogenic Storage Ring, we have determined the DR rate coefficient of the CH$^+$ electronic, vibrational, and rotational ground state applicable for different diffuse cloud conditions. Our results reduce the previously unrecognized order-of-magnitude uncertainty in the CH$^+$ DR rate coefficient to $\sim \pm 20\%$ and are applicable at all temperatures relevant to diffuse clouds, ranging from quiescent gas to gas locally heated by processes such as shocks and turbulence. Based on a simple chemical network, we find that DR can be an important destruction mechanism at temperatures relevant to quiescent gas. As the temperature increases locally, DR can continue to be important up to temperatures of $ \sim 600\,\mathrm{K} $ if there is also a corresponding increase in the electron fraction of the gas. Our new CH$^+$ DR rate coefficient data will increase the reliability of future studies of diffuse cloud physical properties via CH$^+$ abundance observations.