arXiv · 1406.7004
Josephson and Persistent Spin Currents in Bose-Einstein Condensates of Magnons
Abstract
Using the Aharonov-Casher (A-C) phase, we present a microscopic theory of the Josephson and persistent spin currents in quasi-equilibrium Bose-Einstein condensates (BECs) of magnons in ferromagnetic insulators. Starting from a microscopic spin model that we map onto a Gross-Pitaevskii Hamiltonian, we derive a two-state model for the Josephson junction between the weakly coupled magnon-BECs. We then show how to obtain the alternating-current (ac) Josephson effect with magnons as well as macroscopic quantum self-trapping in a magnon-BEC. We next propose how to control the direct-current (dc) Josephson effect electrically using the A-C phase, which is the geometric phase acquired by magnons moving in an electric field. Finally, we introduce a magnon-BEC ring and show that persistent magnon-BEC currents flow due to the A-C phase. Focusing on the feature that the persistent magnon-BEC current is a steady flow of magnetic dipoles that produces an electric field, we propose a method to directly measure it experimentally.
Explore related subjects
Keep this discovery
Kouki Nakata, Kevin A. van Hoogdalem, Pascal Simon, Daniel Loss. 2014-06-26. Josephson and Persistent Spin Currents in Bose-Einstein Condensates of Magnons. https://doi.org/10.1103/physrevb.90.144419
Cite the original work for its findings. Save a collection to share your selection of sources.