Data di Pubblicazione:
2018
Abstract:
A switchable interaction between pairs of highly coherent qubits is a crucial ingredient for the physical
realization of quantum information processing. One promising route to enable quantum logic operations
involves the use of nuclear spins as protected elementary units of information, qubits. Here we propose
a simple way to use fast electronic spin excitations to switch the effective interaction between nuclear
spin qubits and the realization of a two-qubit molecular architecture based on highly coherent vanadyl
moieties to implement quantum logic operations. Controlled generation of entanglement between
qubits is possible here through chemically tuned magnetic coupling between electronic spins, which is
clearly evidenced by the splitting of the vanadium(IV) hyperfine lines in the continuous-wave electron
paramagnetic resonance spectrum. The system has been further characterized by pulsed electron
paramagnetic resonance spectroscopy, evidencing remarkably long coherence times. The experimentally
derived spin Hamiltonian parameters have been used to simulate the system dynamics under the
sequence of pulses required to implement quantum gates in a realistic description that includes also the
harmful effect of decoherence. This demonstrates the possibility of using this molecular complex to
implement a control-Z (CZ) gate and simple quantum simulations. Indeed, we also propose a proof-ofprinciple
experiment based on the simulation of the quantum tunneling of the magnetization in a S = 1
spin system.
Tipologia CRIS:
03A-Articolo su Rivista
Keywords:
Chemistry (all)
Elenco autori:
Atzori, Matteo*; Chiesa, Alessandro; Morra, Elena; Chiesa, Mario; Sorace, Lorenzo; Carretta, Stefano; Sessoli, Roberta
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