English

Wave--particle transition and quantum Zeno effect in which-way experiments with a superconducting quantum processor

Quantum Physics 2026-04-22 v1

Abstract

Wave--particle duality demonstrates the peculiar nature of quantum mechanics. In which-way experiments, depending on the measurement scheme, a particle exhibits either wave-like or particle-like properties, as summarized by Bohr's principle of complementarity. In this work, we implement Mach-Zehnder (MZ) interferometry on a two-dimensional (2D) superconducting quantum processor. With precise control of the which-way measurement strength, we demonstrate the transition of a photon from wave-like to particle-like behavior. Furthermore, by performing quantum state tomography on two qubits located in the two paths, we demonstrate that which-way measurements break the entanglement and coherence between the two paths and cause information leakage from the quantum system to the environment. To capture this behavior quantitatively, we derive complementarity relations between the entropy and the fringe visibility. By applying a continuous which-way measurement during the evolution, we also observe the quantum Zeno effect that partially obstructs the interferometer path, giving rise to nonmonotonic behavior of purity and von Neumann entropy. Our experiments provide a detailed characterization of the full interferometer dynamics, reveal the relation between wave--particle duality and quantum information, and demonstrate the potential of superconducting quantum processors for testing quantum foundations under high precision and controllability.

Keywords

Cite

@article{arxiv.2604.19115,
  title  = {Wave--particle transition and quantum Zeno effect in which-way experiments with a superconducting quantum processor},
  author = {Shiyu Wang and Zhiguang Yan and Clemens Gneiting and Rui Li and Franco Nori and Yasunobu Nakamura},
  journal= {arXiv preprint arXiv:2604.19115},
  year   = {2026}
}

Comments

18 pages, 10 figures

R2 v1 2026-07-01T12:27:49.139Z