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Inverse Design of Molecular Qudits for Quantum Circuitry

dc.contributor.authorLatham, Edwarden
dc.contributor.authorBowen, Alice M.en
dc.contributor.authorCox, Nicholasen
dc.contributor.authorChilton, Nicholas F.en
dc.date.accessioned2025-07-08T10:57:09Z
dc.date.available2025-07-08T10:57:09Z
dc.date.issued2025-04-04en
dc.description.abstractThe development of molecular quantum bits (qubits) for quantum information processing is a lofty goal. While many contemporary works investigate their potential for error correction, fault-tolerance, memories, etc., there is still a lack of experimental examples of molecular multiqubit sequences. Herein, we perform a theoretical investigation of spin Hamiltonian parameter space to identify molecules that could be used to implement a 4-level superdense coding algorithm that has the least stringent requirements for experimental implementation. To do so, we analyze the zero-field splitting (ZFS) Hamiltonian of an S = 3/2 spin system to determine its effectiveness as a molecular qudit capable of performing the superdense coding circuit with X-band pulsed electron paramagnetic resonance (EPR), accounting for realistic constraints imposed by EPR spectrometers. For an S = 3/2 system, the optimal ZFS parameters are |D| approximate to 0.115 cm-1 and |E| approximate to -0.0383 cm-1 (|E/D| approximate to 0.33 approaching the rhombic limit of 1/3), with a field around 160 mT. Our findings highlight the need to maximize the rhombicity of the spin Hamiltonian for four-level molecular qudits.en
dc.description.sponsorshipWe thank the Australian National University for providing the resources and support necessary for this research. AMB thanks the Royal Society and the EPSRC for a Dorothy Hodgkin fellowship (DH160004), The University of Manchester for a Dame Kathleen Ollerenshaw Fellowship, and the Royal Society of Chemistry and the Analytical Chemistry Trust Fund and the Community for Analytical and Measurement Science fellowship (CAMS Fellowship 2020 ACTF ref 600310/09).en
dc.description.statusPeer-revieweden
dc.format.extent9en
dc.identifier.issn0020-1669en
dc.identifier.otherORCID:/0000-0002-7815-6115/work/189727469en
dc.identifier.otherBibtex:latham_inverse_2025en
dc.identifier.otherWOS:001460235700001en
dc.identifier.scopus105001928515en
dc.identifier.urihttps://hdl.handle.net/1885/733766384
dc.language.isoenen
dc.provenanceThis is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).en
dc.rightsPublisher Copyright: © 2025 The Authors. Published by American Chemical Society.en
dc.sourceInorganic Chemistryen
dc.subjectElectron Paramagnetic Resonance Spectroscopyen
dc.titleInverse Design of Molecular Qudits for Quantum Circuitryen
dc.typeJournal articleen
dspace.entity.typePublicationen
local.bibliographicCitation.startpage7490–7498en
local.contributor.affiliationLatham, Edward; Research School of Chemistry, ANU College of Science and Medicine, The Australian National Universityen
local.contributor.affiliationBowen, Alice M.; University of Manchesteren
local.contributor.affiliationCox, Nicholas; Chemistry Research, Research School of Chemistry, ANU College of Science and Medicine, The Australian National Universityen
local.contributor.affiliationChilton, Nicholas F.; Chemistry Research, Research School of Chemistry, ANU College of Science and Medicine, The Australian National Universityen
local.identifier.citationvolume64en
local.identifier.doi10.1021/acs.inorgchem.5c00298en
local.identifier.pureb67df923-365e-4925-9482-ec884dabed5cen
local.identifier.urlhttps://www.scopus.com/pages/publications/105001928515en
local.type.statusPublisheden

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