4.8 Article

Analog quantum simulation of chemical dynamics

Journal

CHEMICAL SCIENCE
Volume 12, Issue 28, Pages 9794-9805

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1sc02142g

Keywords

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Funding

  1. Westpac Scholars Trust Research Fellowship
  2. Lockheed Martin Corporation
  3. Australian Government's Defence Science and Technology Group
  4. United States Office of Naval Research Global [N62909-20-1-2047]
  5. University of Sydney Nano Institute Grand Challenge Computational Materials Discovery

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The research demonstrates that analog quantum simulators can efficiently simulate molecular dynamics, offering significant resource savings and improved time resolution. The approach can be implemented with current technology and shows promise in solving chemically intractable dynamics simulations in the near term.
Ultrafast chemical reactions are difficult to simulate because they involve entangled, many-body wavefunctions whose computational complexity grows rapidly with molecular size. In photochemistry, the breakdown of the Born-Oppenheimer approximation further complicates the problem by entangling nuclear and electronic degrees of freedom. Here, we show that analog quantum simulators can efficiently simulate molecular dynamics using commonly available bosonic modes to represent molecular vibrations. Our approach can be implemented in any device with a qudit controllably coupled to bosonic oscillators and with quantum hardware resources that scale linearly with molecular size, and offers significant resource savings compared to digital quantum simulation algorithms. Advantages of our approach include a time resolution orders of magnitude better than ultrafast spectroscopy, the ability to simulate large molecules with limited hardware using a Suzuki-Trotter expansion, and the ability to implement realistic system-bath interactions with only one additional interaction per mode. Our approach can be implemented with current technology; e.g., the conical intersection in pyrazine can be simulated using a single trapped ion. Therefore, we expect our method will enable classically intractable chemical dynamics simulations in the near term.

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