Quantum speed limit of a noisy continuous-variable system
- URL: http://arxiv.org/abs/2207.02438v3
- Date: Wed, 1 Feb 2023 03:02:33 GMT
- Title: Quantum speed limit of a noisy continuous-variable system
- Authors: Wei Wu and Jun-Hong An
- Abstract summary: The quantum speed limit (QSL) characterizes the latent capability in speeding up of the system.
Previous results showed that such a speedup capability is generally destroyed by the environment induced decoherence.
We propose a scheme to recover the speedup capability in a dissipative continuous-variable system.
- Score: 4.8229512034776
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Setting the minimal-time bound for a quantum system to evolve between two
distinguishable states, the quantum speed limit (QSL) characterizes the latent
capability in speeding up of the system. It has found applications in
determining the quantum superiority in many quantum technologies. However,
previous results showed that such a speedup capability is generally destroyed
by the environment induced decoherence in the Born-Markovian approximate
dynamics. We here propose a scheme to recover the speedup capability in a
dissipative continuous-variable system within the exact non-Markovian
framework. It is found that the formation of a bound state in the energy
spectrum of the total system consisting of the system and its environment can
be used to restore the QSL to its noiseless performance. Giving an intrinsic
mechanism in preserving the QSL, our scheme supplies a guideline to speed up
certain quantum tasks in practical continuous-variable systems.
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