Optimized Multichannel Quantum Defect Theory for cold molecular collisions
arXiv:1206.6072 · doi:10.1103/PhysRevA.86.022711
Abstract
Multichannel quantum defect theory (MQDT) can provide an efficient alternative to full coupled-channel calculations for low-energy molecular collisions. However, the efficiency relies on interpolation of the Y matrix that encapsulates the short-range dynamics, and there are poles in Y that may prevent interpolation over the range of energies of interest for cold molecular collisions. We show how the phases of the MQDT reference functions may be chosen so as to remove such poles from the vicinity of a reference energy and dramatically increase the range of interpolation. For the test case of Mg+NH, the resulting optimized Y matrix may be interpolated smoothly over an energy range of several Kelvin and a magnetic field range of over 1000 G. Calculations at additional energies and fields can then be performed at a computational cost that is proportional to the number of channels N and not to N^3.
7 pages, 6 figures
References in corpus (1)
Cited by in corpus (11)
- MOLSCAT: a program for non-reactive quantum scattering calculations on atomic and molecular collisions
- Quantum Defect Theory for Cold Chemistry with Product Quantum State Resolution
- Lattice model parameters for ultracold nonreactive molecules: chaotic scattering and its limitations
- Multichannel quantum defect theory for ro-vibrational transitions in ultracold molecule-molecule collisions
- Low temperature scattering with the R-matrix method: argon-argon scattering
- Microscopy of an ultranarrow Feshbach resonance using a laser-based atom collider: A quantum defect theory analysis
- Multichannel Quantum Defect Theory for cold molecular collisions with a strongly anisotropic potential energy surface
- Multichannel quantum defect theory with a frame transformation for ultracold atom-molecule collisions in magnetic fields
- Multichannel quantum-defect theory for anisotropic interactions
- Revealing Energy Dependence of Quantum Defects via Two Heteronuclear Atoms in an Optical Tweezer
- User Manual for MOLSCAT, BOUND and FIELD, Version 2025.0: programs for quantum scattering properties and bound states of interacting pairs of atoms and molecules