6 papers · 1 filter
Phase-selective tripartite entanglement and asymmetric Einstein-Podolsky-Rosen steering in squeezed optomechanics
Ya-Feng Jiao, Jie Wang, Dong-Yang Wang +6
The generation and manipulation of multipartite entanglement and EPR steering in macroscopic systems not only play a fundamental role in exploring the nature of quantum mechanics,…
Reinforcement learning assisted non-reciprocal optomechanical gyroscope
Qing-Shou Tan, Ya-Feng Jiao, Yunlan Zuo +3
We propose a novel optomechanical gyroscope architecture based on a spinning cavity optomechanical resonator (COM) evanescently coupled to a tapered optical fiber without relying o…
Tripartite quantum entanglement with squeezed optomechanics
Ya-Feng Jiao, Yun-Lan Zuo, Yan Wang +4
The ability to engineer entangled states that involve macroscopic objects is of particular importance for a wide variety of quantum-enabled technologies, ranging from quantum infor…
Squeezing-enhanced quantum sensing with quadratic optomechanics
Sheng-Dian Zhang, Jie Wang, Qian Zhang +6
Cavity optomechanical (COM) sensors, enhanced by quantum squeezing or entanglement, have become powerful tools for measuring ultra-weak forces with high precision and sensitivity.…
Enhancing the sensitivity of quantum fiber-optical gyroscopes via a non-Gaussian-state probe
Wen-Xun Zhang, Rui Zhang, Yunlan Zuo +1
We propose a theoretical scheme to enhance the sensitivity of a quantum fiber-optical gyroscope (QFOG) via a non-Gaussian-state probe based on quadrature measurements of the optica…
Chiral photon blockade in the spinning Kerr resonator
Yunlan Zuo, Ya-Feng Jiao, Xun-Wei Xu +3
We propose how to achieve chiral photon blockade by spinning a nonlinear optical resonator. We show that by driving such a device at a fixed direction, completely different quantum…