Squeezing, trisqueezing, and quadsqueezing in a spin-oscillator system
O. B\u{a}z\u{a}van, S. Saner, D. J. Webb, E. M. Ainley, P. Drmota, D., P. Nadlinger, G. Araneda, D. M. Lucas, C. J. Ballance, R. Srinivas

TL;DR
This paper demonstrates higher-order bosonic interactions, including squeezing, trisqueezing, and quadsqueezing, in a spin-oscillator system using a single trapped ion, enabling advanced quantum state control and potential applications in quantum information.
Contribution
The authors experimentally realize up to fourth-order bosonic interactions via linear spin-dependent couplings in a trapped ion system, surpassing conventional methods and enabling new quantum states.
Findings
Successfully demonstrate squeezing, trisqueezing, and quadsqueezing.
Achieve quadsqueezing interaction more than 100 times faster than traditional techniques.
Reconstruct the Wigner function of generated quantum states.
Abstract
Quantum harmonic oscillators model a wide variety of phenomena ranging from electromagnetic fields to vibrations of atoms in molecules. Their excitations can be represented by bosons such as photons, single particles of light, or phonons, the quanta of vibrational energy. Linear interactions that only create and annihilate single bosons can generate coherent states of light or motion. Introducing nth-order nonlinear interactions, that instead involve n bosons, leads to increasingly complex quantum behaviour. For example, second-order interactions enable squeezing, used to enhance the precision of measurements beyond classical limits, while higher-order interactions create non-Gaussian states essential for continuous-variable quantum computation. However, generating nonlinear interactions is challenging, typically requiring higher-order derivatives of the driving field or specialized…
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Taxonomy
TopicsNonlinear Dynamics and Pattern Formation
