Nuclear de-excitation line emissions from giant molecular clouds
arXiv:2412.01194 · doi:10.1051/0004-6361/202451973
Abstract
Understanding how cosmic rays (CRs) propagate within the giant molecular clouds (GMCs) is critical for studying the dynamics and chemical processes inside the clouds. The flux of low-energy CRs inside the dense cores of GMCs strongly affects the heating and ionization of the gases and further influences the star-forming process. We analytically calculated the CR distribution inside GMCs assuming different diffusion coefficients, and estimated the corresponding nuclear de-excitation line emission and the ionization rate resulting from the interaction between the penetrating CRs and gases. We find that future MeV observations can be used as a unique probe to measure the low-energy CR density in situ and test different CR propagation scenario inside GMCs.
Accepted by A&A. 7 pages, 7 figures, and 1 table
References in corpus (13)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- Physical properties of molecular clouds for the entire Milky Way disk
- The XMM-Newton Extended Survey of the Taurus Molecular Cloud (XEST)
- Parametrization of gamma-ray production cross-sections for pp interactions in a broad proton energy range from the kinematic threshold to PeV energies
- Gamma rays from molecular clouds
- Nonthermal X-rays from low-energy cosmic rays: Application to the 6.4 keV line emission from the Arches cluster region
- Cosmic ray penetration in diffuse clouds
- Simulations of cosmic ray propagation
- Measurements of nuclear -ray line emission in interactions of protons and particles with N, O, Ne and Si
- Effective Shielding of 10 GeV Cosmic Rays from Dense Molecular Clumps
- Evidence of Cosmic-Ray Excess from Local Giant Molecular Clouds
- Quantifying the interplay between gravity and magnetic field in molecular clouds - a possible multi-scale energy equipartition in NGC6334
- Nuclear de-excitation lines as a probe of low-energy cosmic rays