Researcher profile

Matt Grau

· Dominion University College

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Publications

2 research records shown

Hybrid quantum simulations with qubits and qumodes on trapped-ion platforms
2025 · Physical Review A · DOI 10.1103/kbv4-jj51

We explore the feasibility of gate-based hybrid quantum computing using both discrete (qubit) and continuous (qumode) variables on trapped-ion platforms. Trapped-ion systems have demonstrated record one- and two-qubit gate fidelities and long qubit coherence times, while qumodes, which can be represented by the collective vibrational modes of the ion chain, have remained relatively unexplored for their use in computing. Using numerical simulations, we show that high-fidelity hybrid gates and measurement operations can be achieved for existing trapped-ion quantum platforms. As an exemplary application, we consider quantum simulations of the Jaynes-Cummings-Hubbard model, which is given by a one-dimensional chain of interacting spin and boson degrees of freedom. Using classical simulations, we study its real-time evolution and develop a suitable variational quantum algorithm for ground state preparation. Our results motivate further studies of hybrid quantum computing in this context, which may lead to direct applications in condensed matter and fundamental particle and nuclear physics.

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State preparation of lattice field theories using quantum optimal control
2025 · Physical review. D/Physical review. D. · DOI 10.1103/physrevd.111.034506

We explore the application of quantum optimal control (QOC) techniques to state preparation of lattice field theories on quantum computers. As a first example, we focus on the Schwinger model, quantum electrodynamics in $1+1$ dimensions. We demonstrate that QOC can significantly speed up the ground state preparation compared to gate-based methods, even for models with long-range interactions. Using classical simulations, we explore the dependence on the interqubit coupling strength and the device connectivity, and we study the optimization in the presence of noise. While our simulations indicate potential speedups, the results strongly depend on the device specifications. In addition, we perform exploratory studies on the preparation of thermal states. Our results motivate further studies of QOC techniques in the context of quantum simulations for fundamental physics.

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Co-authors

Felix Ringer

Thomas Jefferson National Accelerator Facility

2 shared publications
Jack Y. Araz

Thomas Jefferson National Accelerator Facility

2 shared publications
Jake Montgomery

Dominion University College

1 shared publication
Siddhanth Bhowmick

Manipal University Jaipur

1 shared publication
Thomas J. McEntire

University at Buffalo, State University of New York

1 shared publication