Quantum Correlations in Jahn-Teller Molecular Systems Simulated with
Superconducting Circuits
- URL: http://arxiv.org/abs/2110.08540v1
- Date: Sat, 16 Oct 2021 10:22:44 GMT
- Title: Quantum Correlations in Jahn-Teller Molecular Systems Simulated with
Superconducting Circuits
- Authors: Ali Pedram, Onur Pusuluk, \"Ozg\"ur E. M\"ustecapl{\i}o\u{g}lu
- Abstract summary: We explore quantum entanglement among vibrational phonon modes and between electronic and vibrational degrees of freedom in molecular systems.
We propose simulating two-frequency Jahn-Teller systems using superconducting circuit quantum electrodynamics systems.
We conclude by discussing experimental feasibility to detect such quantum correlations, considering the dephasing and decoherence in state-of-the-art superconducting two-level systems.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We explore quantum correlations, in particular, quantum entanglement, among
vibrational phonon modes as well as between electronic and vibrational degrees
of freedom in molecular systems, described by Jahn-Teller mechanism.
Specifically, to isolate and simplify the phonon-electron interactions in a
complex molecular system, the basis of our discussions is taken to be the
proposal of simulating two-frequency Jahn-Teller systems using superconducting
circuit quantum electrodynamics systems (circuit QED) by Tekin Dereli and
co-workers in 2012. We evaluate the quantum correlations, in particular
entanglement between the vibrational phonon modes, and present analytical
explanations using a single privileged Jahn-Teller mode picture. Furthermore,
spin-orbit entanglement or quantum correlations between electronic and
vibrational degrees of freedom are examined, too. We conclude by discussing
experimental feasibility to detect such quantum correlations, considering the
dephasing and decoherence in state-of-the-art superconducting two-level systems
(qubits).
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