English

Magnon Bose-Einstein condensates: from time crystals and quantum chromodynamics to vortex sensing and cosmology

Quantum Gases 2024-08-20 v1 Other Condensed Matter Quantum Physics

Abstract

Under suitable experimental conditions collective spin-wave excitations, magnons, form a Bose-Einstein condensate (BEC) where the spins precess with a globally coherent phase. Bose-Einstein condensation of magnons has been reported in a few systems, including superfluid phases of 3^3He, solid state systems such as Yttrium-iron-garnet (YIG) films, and cold atomic gases. Among these systems, the superfluid phases of 3^3He provide a nearly ideal test bench for coherent magnon physics owing to experimentally proven spin superfluidity, the long lifetime of the magnon condensate, and the versatility of the accessible phenomena. We first briefly recap the properties of the different magnon BEC systems, with focus on superfluid 3^3He. The main body of this review summarizes recent advances in application of magnon BEC as a laboratory to study basic physical phenomena connecting to diverse areas from particle physics and cosmology to new phases of condensed matter. This line of research complements the ongoing efforts to utilize magnon BECs as probes and components for potentially room-temperature quantum devices. In conclusion, we provide a roadmap for future directions in the field of applications of magnon BEC to fundamental research.

Keywords

Cite

@article{arxiv.2312.10119,
  title  = {Magnon Bose-Einstein condensates: from time crystals and quantum chromodynamics to vortex sensing and cosmology},
  author = {Jere T. Mäkinen and Samuli Autti and Vladimir B. Eltsov},
  journal= {arXiv preprint arXiv:2312.10119},
  year   = {2024}
}

Comments

39 pages, 12 figures. Prepared for APL special issue on Magnonics