Long-distance coupling of spin qubits via topological magnons

被引:0
作者
Hetényi B. [1 ]
Mook A. [1 ]
Klinovaja J. [1 ]
Loss D. [1 ]
机构
[1] Department of Physics, University of Basel, Klingelbergstrasse 82, Basel
基金
瑞士国家科学基金会;
关键词
Compendex;
D O I
10.1103/PhysRevB.106.235409
中图分类号
学科分类号
摘要
We consider two distant spin qubits in quantum dots, both coupled to a two-dimensional topological ferromagnet hosting chiral magnon edge states at the boundary. The chiral magnon is used to mediate entanglement between the spin qubits, realizing a fundamental building block of scalable quantum computing architectures: a long-distance two-qubit gate. Previous proposals for long-distance coupling with magnons involved off-resonant coupling, where the detuning of the spin-qubit frequency from the magnonic band edge provides protection against spontaneous relaxation. The topological magnon mode, on the other hand, lies in between two magnonic bands far away from any bulk magnon resonances, facilitating strong and highly tuneable coupling between the two spin qubits. Even though the coupling between the qubit and the chiral magnon is resonant for a wide range of qubit splittings, we find that the magnon-induced qubit relaxation is vastly suppressed if the coupling between the qubit and the ferromagnet is antiferromagnetic. A fast and high-fidelity long-distance coupling protocol is presented capable of achieving spin-qubit entanglement over micrometer distances with 1MHz gate speed and up to 99.9% fidelities. The resulting spin-qubit entanglement may be used as a probe for the long-sought detection of topological edge magnons. © 2022 American Physical Society.
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共 111 条
[81]  
Wang X. S., Wang X. R., Topological magnonics, J. Appl. Phys, 129, (2021)
[82]  
Dzyaloshinsky I., A thermodynamic theory of "weak" ferromagnetism of antiferromagnetics, J. Phys. Chem. Solids, 4, (1958)
[83]  
Moriya T., Anisotropic superexchange interaction and weak ferromagnetism, Phys. Rev, 120, (1960)
[84]  
Haldane F. D. M., Model for a Quantum Hall Effect without Landau Levels: Condensed-Matter Realization of the "Parity Anomaly, Phys. Rev. Lett, 61, (1988)
[85]  
Owerre S. A., A first theoretical realization of honeycomb topological magnon insulator, J. Phys.: Condens. Matter, 28, (2016)
[86]  
Holstein T., Primakoff H., Field dependence of the intrinsic domain magnetization of a ferromagnet, Phys. Rev, 58, (1940)
[87]  
Pantaleon P. A., Xian Y., Analytical study of the edge states in the bosonic haldane model, J. Phys.: Condens. Matter, 29, (2017)
[88]  
Hatsugai Y., Chern Number and Edge States in the Integer Quantum Hall Effect, Phys. Rev. Lett, 71, (1993)
[89]  
Hatsugai Y., Edge states in the integer quantum Hall effect and the Riemann surface of the Bloch function, Phys. Rev. B, 48, (1993)
[90]  
Pershoguba S. S., Banerjee S., Lashley J. C., Park J., Agren H., Aeppli G., Balatsky A. V., Dirac Magnons in Honeycomb Ferromagnets, Phys. Rev. X, 8, (2018)