Si-Tong Jin, Shi-Wen He, Zi‐Long Yang, Xuanxuan Xin, Chong Li
Abstract Magnon blockade is a fundamental quantum phenomenon for generating single-magnon
states, and has gradually become one of the candidates for quantum information processing.
We extend existing blockade optimization schemes to a hybrid system consisting of a YIG
micromagnet and a skyrmion, and propose a theoretical scheme for achieving magnon
blockade on this platform. Under weak magnon probing and external driving of the
skyrmion qubit, the second-order correlation function is analytically derived, and the
optimal parameter conditions for both conventional and unconventional magnon blockade
are identified. By appropriately adjusting the intensities of the driving and probing fields,
the magnon blockade effect is significantly enhanced, multi-magnon excitations are
effectively suppressed, and strong antibunching is achieved. Further analysis reveals that
magnon blockade originates from two distinct physical mechanisms: conventional blockade
induced by anharmonicity of the energy level structure, and unconventional blockade arising
from quantum interference between different transition paths. On this platform, the two
mechanisms coexist and can be synergistically controlled, and their cooperation yields a
blockade effect superior to that of either mechanism alone. This work thus provides a
feasible theoretical scheme for the effective manipulation of magnon blockade effects.