Two-Mode Bosonic State Tomography with Single-Shot Joint-Parity Measurement of a Trapped Ion
Honggi Jeon, Jiyong Kang, Wonhyeong Choi, Kyunghye Kim, Jaehun You, Taehyun Kim

TL;DR
This paper introduces a novel single-shot joint-parity measurement technique for multimode quantum state tomography in trapped ions, enabling efficient characterization and error detection of continuous-variable quantum states.
Contribution
The work presents a new method for measuring joint parity in multimode trapped-ion systems using a spin-dependent interaction, advancing quantum state tomography and error mitigation.
Findings
Successful measurement of multimode Wigner functions
Demonstration of real-time parity-flip error detection
Partial recovery of coherence through postselection
Abstract
The full characterization of a continuous-variable quantum system is a challenging problem. For the trapped-ion system, a number of methods of measuring the quantum states have been developed, including the measurement of the Q quasiprobability function and the density-matrix elements in the Fock basis, but these approaches are often slow and difficult to scale to multimode states. Here, we demonstrate a novel and powerful scheme for measuring a continuous-variable quantum state that uses the direct single-shot measurement of the joint parity of the phonon states of a trapped ion. We drive a spin-dependent bichromatic beam-splitter interaction that coherently exchanges phonons between different harmonic oscillator modes of the ion. This interaction encodes the joint-parity information into the relative phase between the two spin states, enabling measurement of the combined phonon-number…
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