Quantum Magnetism, Spin Waves, and Light
arXiv:1807.10626 · doi:10.1007/978-3-030-13345-0
Abstract
Both magnetic materials and light have always played a predominant role in information technologies, and continue to do so as we move into the realm of quantum technologies. In this course we review the basics of magnetism and quantum mechanics, before going into more advanced subjects. Magnetism is intrinsically quantum mechanical in nature, and magnetic ordering can only be explained by use of quantum theory. We will go over the interactions and the resulting Hamiltonian that governs magnetic phenomena, and discuss its elementary excitations, denominated magnons. After that we will study magneto-optical effects and derive the classical Faraday effect. We will then move on to the quantization of the electric field and the basics of optical cavities. This will allow us to understand a topic of current research denominated Cavity Optomagnonics. These notes were written as the accompanying material to the course I taught in the Summer Semester 2018 at the Friedrich-Alexander University in Erlangen. The course is intended for Master or advanced Bachelor students. Basic knowledge of quantum mechanics, electromagnetism, and solid state at the Bachelor level is assumed. Each section is followed by a couple of simple exercises which should serve as to "fill in the blanks" of what has been derived, plus specific references to bibliography, and a couple of check-points for the main concepts developed. The figures are pictures of the blackboard taken during the lecture.
Class notes, revised version, typos corrected, figures added
References in corpus (6)
- Strongly coupled magnons and cavity microwave photons
- Hybridizing ferromagnetic magnons and microwave photons in the quantum limit
- Quantum technologies with hybrid systems
- Triple-resonant Brillouin light scattering in magneto-optical cavities
- Coupled Spin-Light dynamics in Cavity Optomagnonics
- Cavity optomagnonics with magnetic textures: coupling a magnetic vortex to light
Cited by in corpus (9)
- Squeezed light induced symmetry breaking superradiant phase transition
- Theory of Quantum Acoustomagnonics and Acoustomechanics with a Micromagnet
- Design of an optomagnonic crystal: towards optimal magnon-photon mode matching at the microscale
- Quantum Damping of Skyrmion Crystal Eigenmodes due to Spontaneous Quasiparticle Decay
- Microscopic Theory of Ultrafast Skyrmion Excitation by Light
- Optical signatures of the coupled spin-mechanics of a levitated magnetic microparticle
- Quantum Sensing of Antiferromagnetic Magnon Two-Mode Squeezed Vacuum
- Cavity-Enhanced Optical Manipulation of Antiferromagnetic Magnon-Pairs
- Remote Cooling of Spin-ensembles through a Spin-mechanical Hybrid Interface