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      Thermal bistability of magnon in yttrium iron garnet microspheres

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      Applied Physics Letters
      AIP Publishing

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          Dynamical thermal behavior and thermal self-stability of microcavities

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            QUANTUM INFORMATION. Coherent coupling between a ferromagnetic magnon and a superconducting qubit.

            Rigidity of an ordered phase in condensed matter results in collective excitation modes spatially extending to macroscopic dimensions. A magnon is a quantum of such collective excitation modes in ordered spin systems. Here, we demonstrate the coherent coupling between a single-magnon excitation in a millimeter-sized ferromagnetic sphere and a superconducting qubit, with the interaction mediated by the virtual photon excitation in a microwave cavity. We obtain the coupling strength far exceeding the damping rates, thus bringing the hybrid system into the strong coupling regime. Furthermore, we use a parametric drive to realize a tunable magnon-qubit coupling scheme. Our approach provides a versatile tool for quantum control and measurement of the magnon excitations and may lead to advances in quantum information processing.
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              Brillouin light scattering studies of confined spin waves: linear and nonlinear confinement

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                Author and article information

                Journal
                Applied Physics Letters
                Appl. Phys. Lett.
                AIP Publishing
                0003-6951
                1077-3118
                January 14 2019
                January 14 2019
                : 114
                : 2
                : 021101
                Affiliations
                [1 ]Key Laboratory of Quantum Information, Chinese Academy of Sciences, University of Science and Technology of China, Hefei 230026, People's Republic of China
                [2 ]CAS Center For Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China
                Article
                10.1063/1.5075503
                51a37262-e2ba-4a82-8eb5-d90376a26379
                © 2019
                History

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