A Heterometallic Porphyrin Dimer as a Potential Quantum Gate: Magneto‐Structural Correlations and Spin Coherence Properties

Author:

Ranieri Davide1ORCID,Privitera Alberto12ORCID,Santanni Fabio1ORCID,Urbanska Karolina3ORCID,Strachan Grant J.3ORCID,Twamley Brendan4,Salvadori Enrico5ORCID,Liao Yu‐Kai5ORCID,Chiesa Mario5ORCID,Senge Mathias O.36ORCID,Totti Federico1ORCID,Sorace Lorenzo1ORCID,Sessoli Roberta1ORCID

Affiliation:

1. Department of Chemistry “Ugo Schiff” & INSTM RU University of Florence Via della Lastruccia 3 50019 Sesto Fiorentino Italy

2. Department of Industrial Engineering & INSTM RU University of Florence Via Santa Marta 3 50139 Firenze Italy

3. School of Chemistry Chair of Organic Chemistry Trinity Biomedical Sciences Institute Trinity College Dublin The University of Dublin 152-160 Pearse Street D02R590 Dublin Ireland

4. School of Chemistry Trinity College Dublin The University of Dublin Dublin 2 Ireland

5. Department of Chemistry and NIS University of Turin Via P. Giuria 7 10125 Torino Italy

6. Institute for Advanced Study (TUM-IAS) Technical University of Munich Focus Group—Molecular and Interfacial Engineering of Organic Nano-systems Lichtenberg-Str.2a 85748 Garching Germany

Abstract

AbstractIn the development of two‐qubit quantum gates, precise control over the intramolecular spin‐spin interaction between molecular spin units plays a pivotal role. A weak but measurable exchange coupling is especially important for achieving selective spin addressability that allows controlled manipulation of the computational basis states |00⟩ |01⟩ |10⟩ |11⟩ by microwave pulses. Here, we report the synthesis and Electron Paramagnetic Resonance (EPR) study of a heterometallic meso‐meso (m‐m) singly‐linked VIVO−CuII porphyrin dimer. X‐band continuous wave EPR measurements in frozen solutions suggest a ferromagnetic exchange coupling of ca. 8 ⋅ 10−3 cm−1. This estimation is supported by Density Functional Theory calculations, which also allow disentangling the ferro‐ and antiferromagnetic contributions to the exchange. Pulsed EPR experiments show that the dimer maintains relaxation times similar to the monometallic CuII porphyrins. The addressability of the two individual spins is made possible by the different g‐tensors of VIV and CuII‐ions, in contrast to homometallic dimers where tilting of the porphyrin planes plays a key role. Therefore, single‐spin addressability in the heterometallic dimer can be maintained even with small tilting angles, as expected when deposited on surface, unlocking the full potential of molecular quantum gates for practical applications.

Funder

H2020 Future and Emerging Technologies

Ministero dell'Università e della Ricerca

Science Foundation Ireland

Irish Research Council

Institute for Advanced Study, Technische Universität München

Publisher

Wiley

Subject

General Chemistry,Catalysis

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