What can unitary sequences tell us about multi-time physics?

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: White, Gregory A. L., Pollock, Felix A., Hollenberg, Lloyd C. L., Hill, Charles D., Modi, Kavan
Format: Preprint
Published: 2021
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916676972314624
author White, Gregory A. L.
Pollock, Felix A.
Hollenberg, Lloyd C. L.
Hill, Charles D.
Modi, Kavan
author_facet White, Gregory A. L.
Pollock, Felix A.
Hollenberg, Lloyd C. L.
Hill, Charles D.
Modi, Kavan
contents Multi-time quantum processes are endowed with the same richness as multipartite states, including temporal entanglement and exotic causal structures. However, experimentally probing these rich phenomena leans heavily on fast and clean mid-circuit measurements, which are rarely available. We show here how surprisingly accessible these phenomena are in nascent quantum processors even when faced with substantially limited control. We work within the limitation where only unitary control is allowed, followed by a terminating measurement. Within this setting, we first develop a witness for genuine multi-time entanglement, and then methods to bound (from top and bottom) multi-time entanglement, non-Markovianity, purity, entropy, and other correlative measures. Our tools are designed to be implemented on quantum information processors, which we proceed to demonstrate. Finally, we discuss the limitations of these methods by testing them across random multi-time processes. Conceptually, this broadens our understanding of the extent to which temporal correlations may be determined with only deterministic control. Our techniques are pertinent to generic quantum stochastic dynamical processes, with a scope ranging across condensed matter physics, quantum biology, and in-depth diagnostics of NISQ-era quantum devices.
format Preprint
id arxiv_https___arxiv_org_abs_2107_13934
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle What can unitary sequences tell us about multi-time physics?
White, Gregory A. L.
Pollock, Felix A.
Hollenberg, Lloyd C. L.
Hill, Charles D.
Modi, Kavan
Quantum Physics
Multi-time quantum processes are endowed with the same richness as multipartite states, including temporal entanglement and exotic causal structures. However, experimentally probing these rich phenomena leans heavily on fast and clean mid-circuit measurements, which are rarely available. We show here how surprisingly accessible these phenomena are in nascent quantum processors even when faced with substantially limited control. We work within the limitation where only unitary control is allowed, followed by a terminating measurement. Within this setting, we first develop a witness for genuine multi-time entanglement, and then methods to bound (from top and bottom) multi-time entanglement, non-Markovianity, purity, entropy, and other correlative measures. Our tools are designed to be implemented on quantum information processors, which we proceed to demonstrate. Finally, we discuss the limitations of these methods by testing them across random multi-time processes. Conceptually, this broadens our understanding of the extent to which temporal correlations may be determined with only deterministic control. Our techniques are pertinent to generic quantum stochastic dynamical processes, with a scope ranging across condensed matter physics, quantum biology, and in-depth diagnostics of NISQ-era quantum devices.
title What can unitary sequences tell us about multi-time physics?
topic Quantum Physics
url https://arxiv.org/abs/2107.13934