English

Experimental simulation of postselected closed timelike curves for decoding scrambled quantum information

Quantum Physics 2026-04-30 v4

Abstract

Quantum information scrambling (QIS) describes the rapid spread of initially localized information across an entire quantum many-body system through entanglement generation. Once scrambled, the original local information becomes encoded globally, inaccessible from any single subsystem. In this work, we introduce a circuit-based decoding protocol. By utilizing the concept of postselected closed timelike curves (PCTCs), we demonstrate how postselection allows us to interpret an ordinary quantum experiment as an example of a paradox-free trajectory, simulating a consistent time loop and reliable information recovery. Specifically, when conditioned on a final postselected outcome, this experiment can be interpreted as decoding the scrambled information even before the original information is generated. Furthermore, the success probability of the PCTC is governed by out-of-time-ordered correlations, which is a standard measure of QIS. We experimentally implement our protocol on cloud-based Quantinuum and IBM quantum processors. Our approach illuminates a unique quantum task under postselection: the causally consistent simulation of future-to-past scrambled information retrieval.

Keywords

Cite

@article{arxiv.2501.16335,
  title  = {Experimental simulation of postselected closed timelike curves for decoding scrambled quantum information},
  author = {Yi-Te Huang and Hsiang-Wei Huang and Jhen-Dong Lin and Adam Miranowicz and Neill Lambert and Guang-Yin Chen and Franco Nori and Yueh-Nan Chen},
  journal= {arXiv preprint arXiv:2501.16335},
  year   = {2026}
}

Comments

12 pages, 6 figures, 3 tables

R2 v1 2026-06-28T21:20:21.346Z