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Quantum scattering and adiabatic channel treatment of the low-energy and low-temperature capture of a rotating quadrupolar molecule by an ion
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Citations
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References
2004
Year
EngineeringComputational ChemistryAdiabatic Channel TreatmentVibronic InteractionNuclear Quadrupole ResonanceUltracold AtomQuantum ScatteringBiophysicsQuantum SciencePhysicsAtomic PhysicsQuantum ChemistryLow-temperature CaptureLow Collision EnergiesAb-initio MethodNatural SciencesProton TransferApplied PhysicsCapture Rate CoefficientsRate Constants
The capture rate coefficients of homonuclear diatomic molecules (H(2) and N(2)) in the rotational state j=1 interacting with ions (Ar+ and He+) are calculated for low collision energies assuming a long-range anisotropic ion-induced dipole and ion-quadrupole interaction. A comparison of accurate quantum rates with quantum and state-specific classical adiabatic channel approximations shows that the former becomes inappropriate in the case when the cross section is dominated by few partial contributions, while the latter performs better. This unexpected result is related to the fact that the classical adiabatic channel approximation artificially simulates the quantum effects of tunneling and overbarrier reflection as well as the Coriolis coupling and it suppresses too high values of the centrifugal barriers predicted by a quantum adiabatic channel approach. For H2(j=1)+Ar+ and N(2)(j=1)+He+ capture, the rate constants at T-->0 K are about 3 and 6 times higher than the corresponding values for H2(j=0)+Ar+ and N(2)(j=0)+He+ capture.
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