Spin decoherence in VOPc@graphene nanoribbon complexes
- URL: http://arxiv.org/abs/2307.16403v1
- Date: Mon, 31 Jul 2023 04:55:05 GMT
- Title: Spin decoherence in VOPc@graphene nanoribbon complexes
- Authors: Xiao Chen, James N. Fry and H. P. Cheng
- Abstract summary: Carbon nanoribbon or nanographene qubit arrays can facilitate quantum-to-quantum transduction between light, charge, and spin.
We study spin decoherence due to coupling with a surrounding nuclear spin bath of an electronic molecular spin of a vanadyl phthalocyanine (VOPc) molecule integrated on an armchair-edged graphene nanoribbon (GNR)
We find that the decoherence time $T$ is anisotropic with respect to magnetic field orientation and determined only by nuclear spins on VOPc and GNR.
- Score: 5.691318972818067
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Carbon nanoribbon or nanographene qubit arrays can facilitate
quantum-to-quantum transduction between light, charge, and spin, making them an
excellent testbed for fundamental science in quantum coherent systems and for
the construction of higher-level qubit circuits. In this work, we study spin
decoherence due to coupling with a surrounding nuclear spin bath of an
electronic molecular spin of a vanadyl phthalocyanine (VOPc) molecule
integrated on an armchair-edged graphene nanoribbon (GNR). Density functional
theory (DFT) is used to obtain ground state atomic configurations. Decay of
spin coherence in Hahn echo experiments is then simulated using the cluster
correlation expansion method with a spin Hamiltonian involving hyperfine and
electric field gradient tensors calculated from DFT. We find that the
decoherence time $T_2$ is anisotropic with respect to magnetic field
orientation and determined only by the hydrogen nuclear spins both on VOPc and
GNR. Large electron spin echo envelope modulation (ESEEM) due to nitrogen and
vanadium nuclear spins is present at specific field ranges and can be
completely suppressed by tuning the magnetic field. The relation between these
field ranges and the hyperfine interactions is analyzed. The effects of
interactions with the nuclear quadrupole moments are also studied, validating
the applicability and limitations of the spin Hamiltonian when they are
disregarded.
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