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Trigonal Bipyramidal V3+ Complex as an Optically Addressable Molecular Qubit Candidate.

Majed S FataftahSam L BaylissDaniel W LaorenzaXiaoling WangBrian T PhelanC Blake WilsonPeter J MintunBerk D KovosMichael R WasielewskiSong-I HanMark S SherwinDavid D AwschalomDanna E Freedman
Published in: Journal of the American Chemical Society (2020)
Synthetic chemistry enables a bottom-up approach to quantum information science, where atoms can be deterministically positioned in a quantum bit or qubit. Two key requirements to realize quantum technologies are qubit initialization and read-out. By imbuing molecular spins with optical initialization and readout mechanisms, analogous to solid-state defects, molecules could be integrated into existing quantum infrastructure. To mimic the electronic structure of optically addressable defect sites, we designed the spin-triplet, V3+ complex, (C6F5)3trenVCNtBu (1). We measured the static spin properties as well as the spin coherence time of 1 demonstrating coherent control of this spin qubit with a 240 GHz electron paramagnetic resonance spectrometer powered by a free electron laser. We found that 1 exhibited narrow, near-infrared photoluminescence (PL) from a spin-singlet excited state. Using variable magnetic field PL spectroscopy, we resolved emission into each of the ground-state spin sublevels, a crucial component for spin-selective optical initialization and readout. This work demonstrates that trigonally symmetric, heteroleptic V3+ complexes are candidates for optical spin addressability.
Keyphrases
  • single molecule
  • density functional theory
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  • molecular dynamics
  • high resolution
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