Related Experiment Video
Updated: Feb 7, 2026

Investigating Stress-relaxation and Failure Responses in the Trachea
Published on: October 18, 2022
Non-Markovian rotational relaxation matrix for fast collisions between two linear molecules in high-pressure gaseous
Alexander P Kouzov1, Jeanna V Buldyreva2, Andrei V Sokolov1
1Faculty of Physics, Saint-Petersburg State University, Petrodvoretz, Ulyanovskaya Str. 3, Saint-Petersburg 198504, Russia.
Abstract:
Collisional mixing of (vib)rotational lines appearing in spectroscopic signatures of dense planetary atmospheres and combustion environments is rigorously handled for the case of two linear colliders in terms of incomplete (non-Markovian) collisions related to off-energy-shell scattering amplitudes. Contrary to the standard impact-approximation approaches valid solely in band-centre regions, a new uniform broadband spectrum description is developed on the basis of a frequency-dependent rotational relaxation matrix which accurately accounts for the influence of the extra photon energy with respect to the molecular transitions. This matrix is built using a symmetric Liouville-space metric and obeys all known fundamental rules. Its direct calculation from refined potential-energy surfaces and promising modeling methods for forthcoming practical computations are outlined. A simple preliminary test for N2-N2 isotropic Raman line widths argues in favor of considerable effects of the internal perturber's structure on modeled spectral characteristics.
Related Concept Videos
Formal Charges
Definition and Measurement of Pressure: Atmospheric Pressure, Barometer, and Manometer
Homogeneous Equilibria for Gaseous Reactions
For gas-phase reactions, the equilibrium constant may be expressed in terms of either the molar concentrations (Kc) or partial pressures (Kp) of the reactants and products. A relation between these two K values may be simply derived from the ideal gas equation and the definition of molarity. According to the ideal gas equation:
Behavior of Gas Molecules: Molecular Diffusion, Mean Free Path, and Effusion
Vapor Pressure Lowering
Types Of Collisions - I

