Prospects for NMR Spectral Prediction on Fault-Tolerant Quantum Computers

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Elenewski, Justin E., Camara, Christina M., Kalev, Amir
Format: Preprint
Veröffentlicht: 2024
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866908948377894912
author Elenewski, Justin E.
Camara, Christina M.
Kalev, Amir
author_facet Elenewski, Justin E.
Camara, Christina M.
Kalev, Amir
contents Advanced atomic magnetometers have made it possible to acquire nuclear magnetic resonance spectra in zero to ultralow magnetic fields. This regime carries the benefit of compact, low-cost instrumentation with reduced spin relaxation effects and the ability to probe phenomena that are inaccessible in conventional high-field experiments. A tradeoff is that the resulting spectra must be interpreted using simulations that are taxing for classical computation. Working by example for small-molecule and protein spectroscopy, we demonstrate that these simulations are a promising target for fault-tolerant quantum computation. Our holistic analysis spans from input selection to the construction of explicit circuits for qubitized quantum dynamics. By maintaining parity with experimental requirements, we demonstrate how certain cases might be especially promising for early fault-tolerant architectures.
format Preprint
id arxiv_https___arxiv_org_abs_2406_09340
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Prospects for NMR Spectral Prediction on Fault-Tolerant Quantum Computers
Elenewski, Justin E.
Camara, Christina M.
Kalev, Amir
Quantum Physics
Biological Physics
Chemical Physics
Advanced atomic magnetometers have made it possible to acquire nuclear magnetic resonance spectra in zero to ultralow magnetic fields. This regime carries the benefit of compact, low-cost instrumentation with reduced spin relaxation effects and the ability to probe phenomena that are inaccessible in conventional high-field experiments. A tradeoff is that the resulting spectra must be interpreted using simulations that are taxing for classical computation. Working by example for small-molecule and protein spectroscopy, we demonstrate that these simulations are a promising target for fault-tolerant quantum computation. Our holistic analysis spans from input selection to the construction of explicit circuits for qubitized quantum dynamics. By maintaining parity with experimental requirements, we demonstrate how certain cases might be especially promising for early fault-tolerant architectures.
title Prospects for NMR Spectral Prediction on Fault-Tolerant Quantum Computers
topic Quantum Physics
Biological Physics
Chemical Physics
url https://arxiv.org/abs/2406.09340