Published February 14, 2024 | Version v1
Journal article

Sequential quantum simulation of spin chains with a single circuit QED device

  • 1. Department of Physics, University of Texas at Austin, Austin, Texas 78712, USA
  • 2. Department of Physics and Centre for Quantum Information and Quantum Control, University of Toronto, 60 Saint George Street, Toronto, Ontario, Canada M5S 1A7
  • 3. Vector Institute, MaRS Centre, Toronto, Ontario, Canada M5G 1M1
  • 4. Department of Physics, University of California, Berkeley, California 94720, USA
  • 5. Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA
  • 6. Department of Electrical and Computer Engineering, University of Texas at Austin, Austin, Texas 78712, USA
  • 7. Department of Physics and Astronomy, and Stewart Blusson Quantum Matter Institute, University of British Columbia, Vancouver, British Columbia, Canada V6T 1Z1

Description

Quantum simulations of many-body systems in materials science and chemistry are promising application areas for quantum computers. However, the limited scale and coherence of near-term quantum processors pose a significant obstacle to realizing this potential. Here, we theoretically outline how a single-mode circuit quantum electrodynamics device, consisting of a transmon qubit coupled to a long-lived cavity mode, can be used to simulate the ground state of a highly entangled quantum many-body spin chain. We exploit recently developed methods for implementing quantum operations to sequentially build up a matrix product state (MPS) representation of a many-body state. This approach reuses the transmon qubit to read out the state of each spin in the chain and exploits the large state space of the cavity as a quantum memory encoding intersite correlations and entanglement. We show, through simulation, that analog (pulse-level) control schemes can accurately prepare a known MPS representation of a quantum critical spin chain in significantly less time than digital (gate-based) methods, thereby reducing the exposure to decoherence. We then explore this analog-control approach for the variational preparation of an unknown ground state. We demonstrate that the large state space of the cavity can be used to replace multiple qubits in a qubit-only architecture, and could therefore simplify the design of quantum processors for materials simulation. We explore the practical limitations of realistic noise and decoherence and discuss avenues for scaling this approach to more complex problems that challenge classical computational methods.

Additional details

Identifiers

DOI
10.1103/PhysRevA.109.022606;
arXiv
arXiv:2308.16229;
Crossref Funder ID
10.13039/100000015;

Publishing Information

Journal Title
Physical Review A
Journal Volume
109
Journal Issue
2
Journal Page Range
10 pgs.
ISSN
1094-1622

Optional Information

Copyright
©2024 American Physical Society
Contract/Grant/Project number
DE-SC0022102
Notes
Contact Email: yzhang@physics.utoronto.ca; Record automatically processed
Funding organization
U.S. Department of Energy