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A comprehensive framework to simulate real-time chemical dynamics on a fault-tolerant quantum computer

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arxiv 2504.06348 v1 pith:WKUWKZBN submitted 2025-04-08 quant-ph cond-mat.mes-hallcond-mat.mtrl-sci

classification quant-phcond-mat.mes-hallcond-mat.mtrl-sci
keywords quantumcomputerchemicaldynamicsalgorithmchemicallyefficientfault-tolerant
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

We present a comprehensive end-to-end framework for simulating the real-time dynamics of chemical systems on a fault-tolerant quantum computer, incorporating both electronic and nuclear quantum degrees of freedom. An all-particle simulation is nominally efficient on a quantum computer, but practically infeasible. Hence, central to our approach is the construction of a first-quantized plane-wave algorithm making use of pseudoions. The latter consolidate chemically inactive electrons and the nucleus into a single effective dynamical ionic entity, extending the well-established concept of pseudopotentials in quantum chemistry to a two-body interaction. We explicitly describe efficient quantum circuits for initial state preparation across all degrees of freedom, as well as for block-encoding the Hamiltonian describing interacting pseudoions and chemically active electrons, by leveraging recent advances in quantum rejection sampling to optimize the implementations. To extract useful chemical information, we first design molecular fingerprints by combining density-functional calculations with machine learning techniques, and subsequently validate them through surrogate classical molecular dynamics simulations. These fingerprints are then coherently encoded on a quantum computer for efficient molecular identification via amplitude estimation. We provide an extensive analysis of the cost of running the algorithm on a fault-tolerant quantum computer for several chemically interesting systems. As an illustration, simulating the interaction between $\mathrm{NH_3}$ and $\mathrm{BF_3}$ (a 40-particle system) requires 808 logical qubits to encode the problem, and approximately $10^{11}$ Toffoli gates per femtosecond of time evolution. Our results establish a foundation for further quantum algorithm development targeting chemical and material dynamics.

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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. Improved constant factors for qubitized Hamiltonian simulation

    quant-ph 2026-08 conditional novelty 7.0 of 10

    This paper proves that the Jacobi-Anger truncation degree for qubitized Hamiltonian simulation has leading constant 1, improving the previous rigorous bound with constant e/2.

  2. Spectral amplification for ground-state energy estimation of electronic structure in first quantization

    quant-ph 2026-07 conditional novelty 7.0 of 10

    A charge-density sum-of-squares representation lowers the effective block-encoding normalization for first-quantized ground-state energy estimation to O(ηΔ^{-1.5}+η^{1.5}Δ^{-1}), cutting resource estimates by 2–44×.

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