Temperature and Density in the Foot Points of the Molecular Loops in the Galactic Center; Analysis of Multi-J Transitions of 12CO(J=1-0, 3-2, 4-3, 7-6), 13CO(J=1-0) and C18O(J=1-0)
Kazufumi Torii, Natsuko Kudo, Motosuji Fujishita, Tokuichi Kawase,, Takeshi Okuda, Hiroaki Yamamoto, Akiko Kawamura, Norikazu Mizuno, Toshikazu, Onishi, Mami Machida, Kunio Takahashi, Satoshi Nozawa, Ryoji Matsumoto,, Juergen Ott, Kunihiko Tanaka, Nobuyuki Yamaguchi

TL;DR
This study investigates the temperature and density of gas at the foot points of molecular loops in the Galactic Center using multi-J CO transition observations, revealing high temperatures and densities likely caused by shock heating from magnetic flotation.
Contribution
It provides detailed measurements of temperature and density in the foot points, supporting the magnetic flotation model with new high-resolution CO data and analysis.
Findings
Temperature ranges from 30-100 K.
Density around 10^3-10^4 cm^-3.
High temperature regions linked to magnetic reconnection or bouncing.
Abstract
Fukui et al. (2006) discovered two molecular loops in the Galactic center and argued that the foot points of the molecular loops, two bright spots at both loops ends, represent the gas accumulated by the falling motion along the loops, subsequent to magnetic flotation by the Parker instability. We have carried out sensitive CO observations of the foot points toward l=356 deg at a few pc resolution in the six rotational transitions of CO; 12CO(J=1-0, 3-2, 4-3, 7-6), 13CO(J=1-0) and C18O(J=1-0). The high resolution image of 12CO (J=3-2) has revealed the detailed distribution of the high excitation gas including U shapes, the outer boundary of which shows sharp intensity jumps accompanying strong velocity gradients. An analysis of the multi-J CO transitions shows that the temperature is in a range from 30-100 K and density is around 10^3-10^4 cm^-3, confirming that the foot points have…
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