An electrically controlled single molecule spin switch

Fuente: arXiv
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Bibliographic Details
Main Authors: Huang, Wantong, Au-Yeung, Kwan Ho, Greule, Paul, Stark, Máté, Sürgers, Christoph, Wernsdorfer, Wolfgang, Robles, Roberto, Lorente, Nicolas, Willke, Philip
Format: Preprint
Published: 2025
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author Huang, Wantong
Au-Yeung, Kwan Ho
Greule, Paul
Stark, Máté
Sürgers, Christoph
Wernsdorfer, Wolfgang
Robles, Roberto
Lorente, Nicolas
Willke, Philip
author_facet Huang, Wantong
Au-Yeung, Kwan Ho
Greule, Paul
Stark, Máté
Sürgers, Christoph
Wernsdorfer, Wolfgang
Robles, Roberto
Lorente, Nicolas
Willke, Philip
contents Precise control of spin states and spin-spin interactions in atomic-scale magnetic structures is crucial for spin-based quantum technologies. A promising architecture is molecular spin systems, which offer chemical tunability and scalability for larger structures. An essential component, in addition to the qubits themselves, is switchable qubit-qubit interactions that can be individually addressed. In this study, we present an electrically controlled single-molecule spin switch based on a bistable complex adsorbed on an insulating magnesium oxide film. The complex, which consists of an Fe adatom coupled to an iron phthalocyanine (FePc) molecule, can be reversibly switched between two stable states using voltage pulses locally via the tip of a scanning tunnelling microscope (STM). Inelastic electron tunnelling spectroscopy (IETS) measurements and density functional theory (DFT) calculations reveal a distinct change between a paramagnetic and a non-magnetic spin configuration. Lastly, we demonstrate the functionality of this molecular spin switch by using it to modify the electron spin resonance (ESR) frequency of a nearby target FePc spin within a spin-spin coupled structure. Thus, we showcase how individual molecular machines can be utilized to create scalable and tunable quantum devices.
format Preprint
id arxiv_https___arxiv_org_abs_2503_20592
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle An electrically controlled single molecule spin switch
Huang, Wantong
Au-Yeung, Kwan Ho
Greule, Paul
Stark, Máté
Sürgers, Christoph
Wernsdorfer, Wolfgang
Robles, Roberto
Lorente, Nicolas
Willke, Philip
Mesoscale and Nanoscale Physics
Quantum Physics
Precise control of spin states and spin-spin interactions in atomic-scale magnetic structures is crucial for spin-based quantum technologies. A promising architecture is molecular spin systems, which offer chemical tunability and scalability for larger structures. An essential component, in addition to the qubits themselves, is switchable qubit-qubit interactions that can be individually addressed. In this study, we present an electrically controlled single-molecule spin switch based on a bistable complex adsorbed on an insulating magnesium oxide film. The complex, which consists of an Fe adatom coupled to an iron phthalocyanine (FePc) molecule, can be reversibly switched between two stable states using voltage pulses locally via the tip of a scanning tunnelling microscope (STM). Inelastic electron tunnelling spectroscopy (IETS) measurements and density functional theory (DFT) calculations reveal a distinct change between a paramagnetic and a non-magnetic spin configuration. Lastly, we demonstrate the functionality of this molecular spin switch by using it to modify the electron spin resonance (ESR) frequency of a nearby target FePc spin within a spin-spin coupled structure. Thus, we showcase how individual molecular machines can be utilized to create scalable and tunable quantum devices.
title An electrically controlled single molecule spin switch
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2503.20592