Quantum magnonics: when magnon spintronics meets quantum information
science
- URL: http://arxiv.org/abs/2111.14241v2
- Date: Wed, 23 Mar 2022 09:49:19 GMT
- Title: Quantum magnonics: when magnon spintronics meets quantum information
science
- Authors: H. Y. Yuan, Yunshan Cao, Akashdeep Kamra, Rembert A. Duine, Peng Yan
- Abstract summary: We review the basic concepts of magnons and quantum entanglement and discuss the generation and manipulation of quantum states of magnons.
We discuss how magnonic systems can be integrated and entangled with quantum platforms including cavity photons, superconducting qubits, nitrogen-vacancy centers, and phonons.
- Score: 0.8812173669205371
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Spintronics and quantum information science are two promising candidates for
innovating information processing technologies. The combination of these two
fields enables us to build solid-state platforms for studying quantum phenomena
and for realizing multi-functional quantum tasks. For a long time, however, the
intersection of these two fields was limited. This situation has changed
significantly over the last few years because of the remarkable progress in
coding and processing information using magnons. On the other hand, significant
advances in understanding the entanglement of quasi-particles and in designing
high-quality qubits and photonic cavities for quantum information processing
provide physical platforms to integrate magnons with quantum systems. From
these endeavours, the highly interdisciplinary field of quantum magnonics
emerges, which combines spintronics, quantum optics and quantum information
science.Here, we give an overview of the recent developments concerning the
quantum states of magnons and their hybridization with mature quantum
platforms. First, we review the basic concepts of magnons and quantum
entanglement and discuss the generation and manipulation of quantum states of
magnons, such as single-magnon states, squeezed states and quantum many-body
states including Bose-Einstein condensation and the resulting spin
superfluidity. We discuss how magnonic systems can be integrated and entangled
with quantum platforms including cavity photons, superconducting qubits,
nitrogen-vacancy centers, and phonons for coherent information transfer and
collaborative information processing. The implications of these hybrid quantum
systems for non-Hermitian physics and parity-time symmetry are highlighted,
together with applications in quantum memories and high-precision measurements.
Finally, we present an outlook on the opportunities in quantum magnonics.
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