English

Entangling Schr\"odinger's cat states by bridging discrete- and continuous-variable encoding

Quantum Physics 2025-02-05 v2

Abstract

In quantum information processing, two primary research directions have emerged: one based on discrete variables (DV) and the other on the structure of quantum states in a continuous-variable (CV) space. Integrating these two approaches could unlock new potentials, overcoming their respective limitations. Here, we show that such a DV-CV hybrid approach, applied to superconducting Kerr parametric oscillators (KPOs), enables us to entangle a pair of Schr\"odinger's cat states by two methods. The first involves the entanglement-preserving conversion between Bell states in the Fock-state basis (DV encoding) and those in the cat-state basis (CV encoding). The second method implements a iSWAP\sqrt{\textrm{iSWAP}} gate between two cat states following the procedure for Fock-state encoding. This simple and fast gate operation completes a universal quantum gate set in a KPO system. Our work offers powerful applications of DV-CV hybridization and marks a first step toward developing a multi-qubit platform based on planar KPO systems.

Keywords

Cite

@article{arxiv.2406.17999,
  title  = {Entangling Schr\"odinger's cat states by bridging discrete- and continuous-variable encoding},
  author = {Daisuke Hoshi and Toshiaki Nagase and Sangil Kwon and Daisuke Iyama and Takahiko Kamiya and Shiori Fujii and Hiroto Mukai and Shahnawaz Ahmed and Anton Frisk Kockum and Shohei Watabe and Fumiki Yoshihara and Jaw-Shen Tsai},
  journal= {arXiv preprint arXiv:2406.17999},
  year   = {2025}
}
R2 v1 2026-06-28T17:19:21.392Z