13 pags. ; 7 figs. ; 11 tabs.An explicit formulation of the rotational relaxation time in terms of state-to-state rate coefficients associated to inelastic collisions is reported. The state-to-state rates needed for the detailed interpretation of relaxation in H2 and D2, including isotopic variant mixtures, have been calculated by solving the close-coupling Schrödinger equations using the H2–H2 potential energy surface by Diep and Johnson [J. Chem. Phys. 112, 4465 (2000)]. Relaxation related quantities (rotational effective cross section, bulk viscosity, relaxation time, and collision number) calculated from first principles agree reasonably well with acoustic absorption experimental data on H2 and D2 between 30 and 293 K. This result co...
For chemistry networks describing the reactions for the early universe and especially for accuratemo...
Author Institution: Business Computing Research Laboratory, St. Cloud State University, 31 Centennia...
Contains fulltext : 36485.pdf (publisher's version ) (Open Access)The authors pres...
Various potentials have been used for generating scattering cross sections for rotational transition...
The HCO+ and DCO+ molecules are commonly used as tracers in the interstellar medium. Therefore, accu...
The complete sets of state-to-state transition rate coefficients for both target and projectile mole...
A simple exponential-potential model of molecular collisions leads to a twoparameter analytic expres...
In the present work we discuss the dynamical processes guiding the relaxation of the internal rotati...
The close-coupling method is used to calculate purely rotational relaxation rates and pres...
International audienceWe report fully-quantum time-independent calculations of cross sections and ra...
The longitudinal and transverse nuclear relaxation times, T₁ and T₂, have been measured in normal H₂...
Rate coefficients for rotational transitions in H2 induced by H2 impact are presented. Extensive qua...
We present quantum mechanical close-coupling calculations of collisions between two hydrogen molecul...
A close coupling quantum-mechanical calculation is performed for rotational energy transfer in a HD ...
The state-to-state cross sections and rates for collisional transitions of rotational and vibrationa...
For chemistry networks describing the reactions for the early universe and especially for accuratemo...
Author Institution: Business Computing Research Laboratory, St. Cloud State University, 31 Centennia...
Contains fulltext : 36485.pdf (publisher's version ) (Open Access)The authors pres...
Various potentials have been used for generating scattering cross sections for rotational transition...
The HCO+ and DCO+ molecules are commonly used as tracers in the interstellar medium. Therefore, accu...
The complete sets of state-to-state transition rate coefficients for both target and projectile mole...
A simple exponential-potential model of molecular collisions leads to a twoparameter analytic expres...
In the present work we discuss the dynamical processes guiding the relaxation of the internal rotati...
The close-coupling method is used to calculate purely rotational relaxation rates and pres...
International audienceWe report fully-quantum time-independent calculations of cross sections and ra...
The longitudinal and transverse nuclear relaxation times, T₁ and T₂, have been measured in normal H₂...
Rate coefficients for rotational transitions in H2 induced by H2 impact are presented. Extensive qua...
We present quantum mechanical close-coupling calculations of collisions between two hydrogen molecul...
A close coupling quantum-mechanical calculation is performed for rotational energy transfer in a HD ...
The state-to-state cross sections and rates for collisional transitions of rotational and vibrationa...
For chemistry networks describing the reactions for the early universe and especially for accuratemo...
Author Institution: Business Computing Research Laboratory, St. Cloud State University, 31 Centennia...
Contains fulltext : 36485.pdf (publisher's version ) (Open Access)The authors pres...