Stabilizing a single-magnon state by optimizing magnon blockade
Zhu-yao Jin, Jun Jing

TL;DR
This paper proposes an optimized method to stabilize a high-quality single-magnon state in a hybrid system by tuning detunings, intensities, and phases, achieving superior quantum state purity and brightness.
Contribution
It introduces a novel optimization strategy for magnon blockade, enhancing the stability and quality of single-magnon states in hybrid quantum systems.
Findings
Maximum single-magnon probability achieved at specific detuning conditions
Double-magnon probability minimized through intensity and phase tuning
High purity and brightness of the single-magnon state demonstrated
Abstract
A stable and high-quality single-magnon state is desired by the single-magnon source for quantum information application with a macroscopic spin system. We consider a hybrid system where a magnon mode is directly coupled to a nonresonant superconducting qubit via the exchange interaction. The magnon and qubit are under the driving and probing fields with the same frequency, respectively. We find that the single-magnon probability can be maximized when the product of the magnon-driving field detuning and the qubit-probing field detuning is equivalent to the square of the magnon-qubit coupling strength, . Then, the double-magnon probability can be minimized by tuning the ratio of the probing intensity to the driving intensity and the relative phase between the two fields. Under these optimized conditions with accessible strong driving intensity and low…
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Taxonomy
TopicsQuantum and electron transport phenomena · Quantum Information and Cryptography · Quantum Computing Algorithms and Architecture
