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Practical Quantum Computation of Chemical and Nuclear Energy Levels Using Quantum Imaginary Time Evolution and Lanczos Algorithms

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arxiv 1912.06226 v1 pith:CE5VCOFW submitted 2019-12-12 quant-ph hep-th

classification quant-phhep-th
keywords quantumcomputationexcitedalgorithmsapplicationbindingchemicalenergies
verification ladder T0 review T1 audit T2 compute T3 formal
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Various methods have been developed for the quantum computation of the ground and excited states of physical and chemical systems, but many of them require either large numbers of ancilla qubits or high-dimensional optimization. The quantum imaginary-time evolution (QITE) and quantum Lanczos (QLanczos) methods proposed in [1] eschew the aforementioned issues. In this study, we demonstrate the practical application of these algorithms to nontrivial quantum computation, using the deuteron binding energy and molecular Hydrogen binding and excited state energies as examples. With the correct choice of initial and final states, we show that the number of time steps in QITE and QLanczos can be reduced significantly, which commensurately simplifies the required quantum circuit and improves compatibility with NISQ devices. We have performed these calculations on cloud-accessible IBM-Q quantum computers. With the application of readout-error mitigation and Richardson error extrapolation, we have obtained ground and excited state energies that agree well with exact results obtained from diagonalization.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Ab initio many-fermion structure calculations on a quantum computer

    nucl-th 2025-05 conditional novelty 6.0 of 10

    A quantum-classical resolvent method with a new fermionic block-encoding input scheme computes the spectrum and J values of 20O in a truncated sd-shell space, matching classical diagonalization.

  2. Saturable Quantum Speed Limits for Imaginary-Time Evolution

    quant-ph 2025-08 conditional novelty 4.0 of 10

    A geometric speed limit for imaginary-time evolution bounds evolution time by angular distance over averaged energy dispersion and is saturated in two-level and Grover-search examples.

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