We present a quantum scattering study of the fine and hyperfine rotational (de-) excitation of the linear carbon-chain radical mathrm C ₄ łeft (² Σ^ H X + ̊ight) in collisions with helium atoms at low temperatures relevant to the interstellar medium (ISM). For those purposes, a new highly accurate two-dimensional potential energy surface (2D-PES) for the mathrm C ₄ - weakly bound complex was generated using the spin-restricted explicitly correlated coupled-cluster RCCSD (T) -F12 approach in conjunction with the aug-cc-pVTZ basis sets and full counterpoise corrections. The resulting 2D-PES exhibits pronounced anisotropy, featuring a global minimum at a T-shaped configuration and a secondary local minimum at linear geometry. Such anisotropy significantly affects the collisional dynamics. Based on this 2D-PES, we performed quantum close-coupling scattering calculations followed by angular momentum recoupling techniques to obtain state-to-state inelastic cross sections and temperature-dependent rate coefficients for transitions between the fine and hyperfine structure levels of mathrm H He C ₄ radical. Our computations reveal a marked preference for Δ j=Δ N= ± 2 fine-structure transitions, governed by the dominant second-order anisotropic term in the Legendre expansion of the interaction potential. Additionally, hyperfine-resolved rate coefficients display enhanced probabilities for transitions with Δ F=Δ j, particularly at high rotational levels. This study provides the first set of fine- and hyperfine-resolved rate coefficients for the mathrm H C ₄ - system, offering essential input for non-local thermodynamic equilibrium modeling of mathrm H He C ₄ absorption and emission in cold astrophysical environments. Indeed, the present set of data should enable more accurate interpretations of observational spectra from cold molecular clouds and circumstellar envelopes, and contribute to our understanding of the excitation dynamics and chemical evolution of carbon-chain radicals in the ISM. H
Mehnen et al. (Wed,) studied this question.