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High-precision Quantum Phase Estimation on a Trapped-ion Quantum Computer

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arxiv 2506.17207 v1 pith:OLPXRT5K submitted 2025-06-20 quant-ph

High-precision Quantum Phase Estimation on a Trapped-ion Quantum Computer

classification quant-ph
keywords quantumqubitsapproachchemistrycircuitserrorhartreescale
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Emergent quantum computing technologies are widely expected to provide novel approaches in the simulation of quantum chemistry. Despite rapid improvements in the scale and fidelity of quantum computers, high resource requirements make the execution of quantum chemistry experiments challenging. Typical experiments are limited in the number of qubits used, incur a substantial shot cost, or require complex architecture-specific optimization and error mitigation techniques. In this paper, we propose a conceptually simple benchmarking approach involving the use of multi-ancilla quantum phase estimation. Our approach is restricted to very small chemical systems, and does not scale favorably beyond molecular systems that can be described with $2$ qubits; however, this restriction allows us to generate circuits that scale quadratically in gate count with the number of qubits in the readout register. This enables the execution of quantum chemistry circuits that act on many qubits, while producing meaningful results with limited shot counts. We use this technique (with $200$ shots per experiment) to calculate the ground state energy of molecular hydrogen to $50$ bits of precision ($8.9 \times 10^{-16}$ hartree) on a $56$-qubit trapped-ion quantum computer, negating Trotter error. Including Trotter error, we obtain between $32$ and $36$ bits of precision ($1.5 * 10^{-10}$ and $6.0 * 10^{-11}$ hartree respectively), vastly exceeding chemical accuracy ($1.6 * 10^{-3}$ hartree) against Full Configuration Interaction. We consider application of the approach to deeper circuits, and discuss potential as a benchmark task for near-term quantum devices.

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Cited by 3 Pith papers

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

  1. Split-Evolution Quantum Phase Estimation for Particle-Conserving Hamiltonians

    quant-ph 2026-04 unverdicted novelty 7.0

    SE-QPE modifies canonical QPE by using CSWAP interference to remove controlled-simulation overhead while preserving phase outcomes for particle-conserving Hamiltonians with shared eigenbases, yielding resource reducti...

  2. Split-Evolution Quantum Phase Estimation for Particle-Conserving Hamiltonians

    quant-ph 2026-04 unverdicted novelty 6.0

    SE-QPE replaces controlled evolution in QPE with CSWAP-based interference, cutting CX and T costs for particle-conserving chemistry Hamiltonians while matching canonical phase outcomes.

  3. Numerical Experiments with Parameter Setting of Trotterized Quantum Phase Estimation for Quantum Hamiltonian Ground State Computation

    quant-ph 2026-02 conditional novelty 4.0

    On a 3-qubit Heisenberg spin glass, Trotterized QPE samples the ground-state-energy phase at a rate fixed by initial-state overlap times the textbook QPE success probability, saturating at surprisingly high Trotter error.