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arXiv · 2608.20238

ALOHA IRDCs Molecular Line Follow-up: I. Gas properties and kinematics

Abstract

Infrared Dark Clouds are ideal sites for investigating the initial conditions of massive star and cluster formation. The A Lei Of the Habitat and Assembly of Infrared Dark Clouds (ALOHA IRDCs), a James Clerk Maxwell Telescope (JCMT) Large Program, has mapped nearby IRDCs with SCUBA-2. Complementary molecular line observations are needed to characterise the physical, kinematic, and chemical properties of the dense gas. We aim to determine the thermal, kinematic, and chemical properties of clumps identified in the ALOHA IRDCs, and to assess their evolutionary status and level of star-forming activity. We performed single-pointing K-band and W-band observations towards 56 ALOHA IRDCs clumps using the Effelsberg 100-m and Yebes 40-m telescopes, respectively. We derived NH3 kinetic temperatures using the hyperfine group ratio (HFGR) method and identified infall and shock signatures from HCO+, H13CO+, SiO, and HNCO profiles. Water masers and NH2D emission were used as complementary tracers of chemical evolution and star formation. The clumps exhibit kinetic temperatures of 15-29 K. We detect NH2D emission towards 18 sources, with NH2D centroid velocities consistent with NH3, indicating both species trace the same dense gas component. More than half of the clumps display blue-asymmetric HCO+ profiles, identifying them as infall candidates. Water masers are detected in 22 sources, with prominent velocity ranges and variability. Broad SiO emission (>~20 km/s) indicates strong shocks, while narrower extents (<~6km/s) likely trace large-scale interactions or low-velocity shocks. The widespread infall signatures, shock tracers, masers, and NH2D emission suggest that relatively quiescent, chemically young material can coexist with dynamically active gas affected by early protostellar feedback, providing insight into the coupled physical and chemical evolution of massive IRDC clumps.

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Jinjin Xie, Yaoting Yan, Zhiyuan Ren, Jarken Esimbek, Di Li, Yan Duan, Gary A. Fuller, Nicolas Peretto, Jingwen Wu, Wenjin Yang, Christian Henkel, Xuepeng Chen, Qianru He, Yongxiong Wang, Keping Qiu, Ningyu Tang, Sijia Peng, Chao-Wei Tsai, Pham Ngoc Diep, Hauyu Baobab Liu, Busaba Kramer, Kee-Tae Kim, Ken'ichi Tatematsu, Mark G. Rawlings, Maria Jesus Jimenez Donaire, Gan Luo, Xin Lyu, Jiawei Liu, Yuchen Xing, Sheng-yuan Liu, Koichiro Sugiyama, Ram K. Yadav, Willem A. Baan, Gordon Macleod, Patricio Sanhueza, Long-Fei Chen, Chang Won Lee, Yang Su, Chen Wang, Ruili Wang, Ruilin Xia, Andrej Sobolev, Dmitry A. Ladeyschikov, David Eden, Woojin Kwon, Fengwei Xu, Hongjun Ma, Daniel Harsono, Sihan Jiao, Rowan Smith, Ke Wang, Tie Liu, Guangxing Li, Xin Guan, Yuxin He, Dalei Li, Xindi Tang, Chunsheng Luo, Jianjun Zhou, Kitiyanee Asanok, Dan Bintley, Huei-Ru Vivien Chen, En Chen, Chakali Eswaraiah, Ana Duarte-Cabral, Siyi Feng, Ray S. Furuya, Tomoya Hirota, Ernar Imanaly, Xue-Jian Jiang, Qaynar Jandaolet, Abay Jengis, Weiguang Ji, Yi-Jehng Kuan, Min-Young Lee, Chong Li, Cuihuan Li, Guodong Li, Hua-bai Li, Jiasheng Li, Yujie Li, Mengting Liu, Kuan-Yu Liu, Shu Liu, Rong Liu, Yongquan Luo, Yingxiu Ma, Steve Mairs, Fumitaka Nakamura, Harriet Parsons, Jaime Pineda, Hailiang Shen, Mingke Sun, Serikbek Sailanbek, Nurzhan Shaimoldin, Ya-Wen Tang, Antneh Gashaye Tegegne, Kadirya Tursun, Glenn J. White, Gang Wu. 2026-08-20. ALOHA IRDCs Molecular Line Follow-up: I. Gas properties and kinematics. https://arxiv.org/abs/2608.20238

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