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Real-Space Chemistry on Quantum Computers: A Fault-Tolerant Algorithm with Adaptive Grids and Transcorrelated Extension

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arxiv 2507.20583 v1 pith:YBFQASTU submitted 2025-07-28 quant-ph physics.chem-ph

Real-Space Chemistry on Quantum Computers: A Fault-Tolerant Algorithm with Adaptive Grids and Transcorrelated Extension

classification quant-ph physics.chem-ph
keywords quantumchemistrygridstranscorrelatedcomputationalcomputerscoulombeigenvalue
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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First-quantized, real-space formulations of quantum chemistry on quantum computers are appealing: qubit count scales logarithmically with spatial resolution, and Coulomb operators achieve quadratic instead of quartic computational scaling of two-electron interactions. However, existing schemes employ uniform discretizations, so the resolution required to capture electron-nuclear cusps in high-density regions oversamples low-density regions, wasting computational resources. We address this by deploying non-uniform, molecule-adaptive grids that concentrate points where electronic density is high. Using Voronoi partitions of these grids, the molecular Hamiltonian is expressed in a Hermitian form and in a transcorrelated, isospectral form that eliminates Coulomb singularities and yields cusp-free eigenfunctions. Both formulations slot naturally into quantum eigenvalue solvers: Hermitian Quantum Phase Estimation (QPE) and the recent generalised Quantum Eigenvalue Estimation (QEVE) protocol for its non-Hermitian, transcorrelated counterpart. Numerical validation on benchmark systems confirms that this non-heuristic ab initio framework offers a promising path for accurate ground-state chemistry on quantum hardware.

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  1. Interpolative Separable Density-Fitting for Transcorrelated Hamiltonians

    physics.chem-ph 2026-07 conditional novelty 6.0

    ISDF compression of transcorrelated integrals enables CCSD-level calculations with near-CBS accuracy on hydrogen chains and benzene up to cc-pCV5Z.