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Harnessing the Spin-Flip Radiative Lifetimes of Optically Addressable Molecular Qubits
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DOI:10.1021/jacsau.6c00464.png)
Abstract
En 中文
Optically addressable molecular qubits based on spin-flip (SF) emissive transitions are promising candidates for quantum technologies due to their sharp luminescence lines and tunable optical-spin interfaces. Yet, the microscopic mechanisms controlling the spin-flip radiative lifetime of SF emitters, a key property for efficient spin readout, remain largely unexplored. Here, we present a computational study of several Cr4+ and Mo4+ pseudotetrahedral molecular qubits, and we identify chemical and structural features that influence the transition dipole moment associated with the SF emission, which, in turn, governs the SF radiative lifetime. We find that the magnitude of the dipole moment is governed by the multireference character of the spin-flip excited-state wave function, which can be modulated by tuning the energy separation between the d orbitals of the metal and the spin-pairing energy. Both parameters are sensitive to molecular symmetry, metal–ligand bond covalency, and bond anisotropy and leave room for modulation via ligand and metal design, as well as applied strain, which is relevant for sensing applications. Our findings provide a mechanistic framework for understanding and tuning the spin-flip radiative behavior of molecular qubits and SF emitters that may guide future advances in quantum information science.
Keywords:
Group theory
Ligands
Luminescence
Polarity
Quantum mechanics
molecular qubits
spin-flip emission
transition metal complexes
radiative lifetime
optical addressability
Journal
IF:
8.7
Papers:
2.3K
Citations:
8.0K
