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arxiv: 2503.08197 · v1 · submitted 2025-03-11 · 🪐 quant-ph

Quantum squeezing amplification with a weak Kerr nonlinear oscillator

classification 🪐 quant-ph
keywords quantumsqueezingstatesamplificationkerrsqueezedapplicationscavity
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Quantum squeezed states, with reduced 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 for various Fock states |N> with N up to 6 in 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 squeezing rate of 0.28 MHz. Our hardware-efficient displacement-enhanced squeezing operations provide an alternative pathway for generating large squeezed states, promising potential applications in quantum-enhanced sensing and quantum information processing.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Quantum signatures and semiclassical limitations in the transmission of Fock states

    quant-ph 2026-05 unverdicted novelty 5.0

    Numerical study shows semiclassical methods reproduce overall Fock-state barrier transmission but miss quantum interference plateaus and Kerr effects, while maximum transmission remains bounded by the initial positive...