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Quantum Information Science

We are exploring the coherent dynamics of multi-spin systems for quantum computing, communications, and sensing applications. Different flavors of photo-initiated chemical reactions allow us to generate spin systems with a well-defined initial configuration, crucial for quantum information processing. We study, manipulate, and control these coherent spin states with techniques including transient absorption (TA) spectroscopy, time-resolved electron paramagnetic resonance (TREPR),  pulsed electron magnetic resonance (pulsed-EPR), and optically detected magnetic resonance (ODMR) spectroscopies.

 

Multi-spin Systems as Spin Qubits

Taking advantage of their structural reproducibility and modularity with precision at the atomic level, we design molecular systems in which electron spins involved in photochemical processes following light excitation fulfill crucial requirements for functional qubits. We have shown that the pure initial quantum state in photogenerated spin-correlated radical pairs can be detected using electron paramagnetic resonance (EPR) spectroscopy. Our bottom-up synthetic tailoring yields systems with lifetime and spin state addressability appropriate to quantum gate operations using pulse-EPR techniques. More specifically, quantum teleportation, CNOT gate operation, and polarization transfer to a third spin have been demonstrated on radical-pair-based systems.

In the meantime, we construct molecular analogs of diamond defect nitrogen-vacancy (NV) centers, aiming to achieve optical readout, common in today’s field of quantum information processing. Upon photoexcitation and subsequent enhanced intersystem crossing due to the presence of a radical, the chromophore-radical systems we work with provide highly spin-polarized ground doublet and excited quartet spin states that are detectable in both traditional EPR spectroscopy and optically detected magnetic resonance (ODMR) spectroscopy. We seek to further explore the unique molecular degrees of freedom absent from the defect centers and implement quantum gate protocols in these systems.

Representative Publications:

Effect of the Time Delay between Spin State Preparation and Measurement on Electron Spin Teleportation in a Covalent Donor− Acceptor−Radical SystemJ. Phys. Chem. Lett. 202213 (1), 156−160.

Mechanistic Study of Electron Spin Polarization Transfer in Covalent Donor-Acceptor-Radical SystemsAppl Magn Reson 2021.

Interaction of Photogenerated Spin Qubit Pairs with a Third Electron Spin in DNA Hairpins. J. Am. Chem. Soc. 2021, 143(12), 4625–4632.

Controlling the Dynamics of Three Electron Spin Qubits in a Donor–Acceptor–Radical Molecule Using Dielectric Environment Changes. J. Phys. Chem. Lett. 2021, 12(9), 2213–2218.

Photodriven quantum teleportation of an electron spin state in a covalent donor-acceptor-radical systemNat. Chem. 201911, 981-986.