Clock Transitions in Molecular Spin Qubits

ORAL · Invited

Abstract

Qubit is an elementary unit of quantum computing, allowing coherent superposition of states that can be initialized, manipulated, and read-out for quantum information processing. Molecular spin qubits are appealing due to their synthetic tunability and a broad range of spin states that can be incorporated by using various transition and lanthanide metal ions. The generally short coherence time, however, remains the major obstacle for implementation of molecular qubits in quantum computing technology. In this contribution, we demonstrate how this challenge can be addressed by using high-symmetry lanthanide complexes to achieve clock transitions, characterized by a dramatically enhanced coherence time at specific values of resonant magnetic field.

* This work was supported by the Center for Molecular Magnetic Quantum Materials, an Energy Frontier Research Center funded by the U.S. Department of Energy, Office of Science, Basic Energy Sciences, under Award DESC0019330.

Presenters

  • Michael Shatruk

    Florida State University

Authors

  • Michael Shatruk

    Florida State University

  • Robert Stewart

    Florida State University

  • Stephen Hill

    Florida State University

  • Miguel Gakiya-Teruya

    Florida State University