Quantum squeezing amplification with a weak Kerr nonlinear oscillator
Abstract
Abstract Quantum squeezed states, with biased quantum noise, have been widely utilized in quantum sensing and quantum error correction applications. However, generating and manipulating these nonclassical states with a large squeezing degree typically requires strong nonlinearity, which inevitably induces additional decoherence that diminishes the overall performance. Here, we demonstrate the generation and amplification of squeezed states in a superconducting microwave cavity with weak Kerr nonlinearity. By subtly engineering an off-resonant microwave drive, we observe cyclic dynamics of the quantum squeezing evolution in a displaced frame of the cavity. Furthermore, we deterministically realize quantum squeezing amplification by alternately displacing the Kerr oscillator using the Trotterization technique, achieving a maximum squeezing degree of 14.6 dB and a squeezing rate of 0.28 MHz. Our demonstrated displacement-enhanced squeezing operation offers a hardware-efficient approach for generating large squeezed states, promising potential applications in quantum-enhanced sensing and quantum information processing.
Article Details
Authors (11)
Yanyan Cai
Xiaowei Deng
Libo Zhang
Department of Chemistry, University of California, One Shields Avenue, Davis, California 95616, United States
Zhongchu Ni
Jiasheng Mai
Peihao Huang
Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences
Pan Zheng
Key Laboratory of Superlight Materials & Surface Technology of Ministry of Education, College of Material Sciences and Chemical Engineering, Harbin Engineering University, Harbin 150001, P. R. China
Ling Hu
Song Liu
Yuan Xu
Dapeng Yu