Three-boson spectrum in the presence of 1D spin-orbit coupling: Efimov's generalized radial scaling law
Q. Guan, D. Blume

TL;DR
This paper demonstrates that the Efimov effect's discrete scaling symmetry persists in three-boson systems with 1D spin-orbit coupling, leading to a generalized radial scaling law in five-dimensional space.
Contribution
It extends Efimov physics to systems with 1D spin-orbit coupling, establishing a generalized radial scaling law that accounts for additional parameters.
Findings
Discrete scaling symmetry remains with 1D spin-orbit coupling.
Energy levels depend on scattering length, spin-orbit parameters, and momentum.
Generalized radial scaling law applies in five-dimensional space.
Abstract
Spin-orbit coupled cold atom systems, governed by Hamiltonians that contain quadratic kinetic energy terms typical for a particle's motion in the usual Schr\"odinger equation and linear kinetic energy terms typical for a particle's motion in the usual Dirac equation, have attracted a great deal of attention recently since they provide an alternative route for realizing fractional quantum Hall physics, topological insulators, and spintronics physics. The present work focuses on the three-boson system in the presence of 1D spin-orbit coupling, which is most relevant to ongoing cold atom experiments. In the absence of spin-orbit coupling terms, the three-boson system exibits the Efimov effect: the entire energy spectrum is uniquely determined by the -wave scattering length and a single three-body parameter, i.e., using one of the energy levels as input, the other energy levels can be…
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Taxonomy
TopicsQuantum and electron transport phenomena · Cold Atom Physics and Bose-Einstein Condensates · Quantum, superfluid, helium dynamics
