Multi-product Zeno effect with higher order convergence rates

Fuente: arXiv
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Main Author: Möbus, Tim
Format: Preprint
Published: 2024
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author Möbus, Tim
author_facet Möbus, Tim
contents To implement the dynamics of a projected Hamiltonian or Lindbladian, the quantum Zeno effect is a fundamental quantum phenomenon that approximates the effective dynamic by intersecting the Hamiltonian or Lindblad evolution by any quantum operation that converges to the desired projected subspace. Unlike the related Trotter product formula, the best-known convergence rate of the quantum Zeno effect is limited to the order $1/n$. In this work, we improve the convergence rate using a multi-product formula to achieve any power of $1/n^{K+1}$, employing a modified Chernoff Lemma, a modified Dunford-Segal approximation, and the holomorphic functional calculus. We briefly illustrate this scheme using the bosonic cat code as an example, along with a broader class of cases governed by the `Bang-Bang' method for decoupling systems from their environment.
format Preprint
id arxiv_https___arxiv_org_abs_2410_16260
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Multi-product Zeno effect with higher order convergence rates
Möbus, Tim
Mathematical Physics
Quantum Physics
To implement the dynamics of a projected Hamiltonian or Lindbladian, the quantum Zeno effect is a fundamental quantum phenomenon that approximates the effective dynamic by intersecting the Hamiltonian or Lindblad evolution by any quantum operation that converges to the desired projected subspace. Unlike the related Trotter product formula, the best-known convergence rate of the quantum Zeno effect is limited to the order $1/n$. In this work, we improve the convergence rate using a multi-product formula to achieve any power of $1/n^{K+1}$, employing a modified Chernoff Lemma, a modified Dunford-Segal approximation, and the holomorphic functional calculus. We briefly illustrate this scheme using the bosonic cat code as an example, along with a broader class of cases governed by the `Bang-Bang' method for decoupling systems from their environment.
title Multi-product Zeno effect with higher order convergence rates
topic Mathematical Physics
Quantum Physics
url https://arxiv.org/abs/2410.16260