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Hyperfine Coupling Constants on Quantum Computers: Performance, Errors, and Future Prospects

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arxiv 2503.09214 v2 pith:MUJN74M6 submitted 2025-03-12 quant-ph physics.chem-phphysics.comp-ph

Hyperfine Coupling Constants on Quantum Computers: Performance, Errors, and Future Prospects

classification quant-ph physics.chem-phphysics.comp-ph
keywords quantumerrorhardwarehfcsactivebulletconstantscoupling
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We present the first implementation and computation of electron spin resonance isotropic hyperfine coupling constants (HFCs) on quantum hardware. As illustrative test cases, we compute the HFCs for the hydroxyl radical (OH$^{\bullet}$), nitric oxide (NO$^{\bullet}$), and the triplet hydroxyl cation (OH$^{+}$). Our approach integrates the qubit-ADAPT method with unrestricted orbital optimization in an active space framework. To accurately measure the necessary spin one-electron reduced density matrices on current hardware, we employ a combination of error mitigation, error suppression, and post-selection, including our in-house developed ansatz-based readout and gate error mitigation. The HFCs obtained from the quantum hardware experiments align with results from unrestricted complete active space self-consistent field calculations on classical hardware. These results mark a significant step towards leveraging quantum computing for chemically relevant molecular properties and highlight the critical role of multi-method error strategies in the noisy intermediate-scale quantum era.

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