State Preparation in a Jaynes-Cummings Lattice with Quantum Optimal
Control
- URL: http://arxiv.org/abs/2306.11968v2
- Date: Wed, 15 Nov 2023 20:17:25 GMT
- Title: State Preparation in a Jaynes-Cummings Lattice with Quantum Optimal
Control
- Authors: Prabin Parajuli, Anuvetha Govindarajan, and Lin Tian
- Abstract summary: We study a quantum optimal control (QOC) approach for fast generation of quantum ground states in a finite-sized Jaynes-Cummings lattice with unit filling.
Our result shows that the QOC approach can generate quantum many-body states with high fidelity when the evolution time is above a threshold time.
- Score: 2.8063310156671477
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: High-fidelity preparation of quantum states in an interacting many-body
system is often hindered by the lack of knowledge of such states and by limited
decoherence times. Here we study a quantum optimal control (QOC) approach for
fast generation of quantum ground states in a finite-sized Jaynes-Cummings
lattice with unit filling. Our result shows that the QOC approach can generate
quantum many-body states with high fidelity when the evolution time is above a
threshold time, and it can significantly outperform the adiabatic approach. We
study the dependence of the threshold time on the parameter constraints and the
connection of the threshold time with the quantum speed limit. We also show
that the QOC approach can be robust against control errors. Our result can lead
to advances in the application of the QOC for many-body state preparation.
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