Toward Chemical Accuracy with Shallow Quantum Circuits: A Clifford-Based Hamiltonian Engineering Approach
Creators
Abstract
Achieving chemical accuracy with shallow quantum circuits is a significant challenge in quantum computational chemistry, particularly for near-term quantum devices. In this work, we present a Clifford-based Hamiltonian engineering algorithm, namely CHEM, that addresses the trade-off between circuit depth and accuracy. Based on a variational quantum eigensolver and hardware-efficient ansatz, our method designs the Clifford-based Hamiltonian transformation that (1) ensures a set of initial circuit parameters corresponding to the Hartree–Fock energy can be generated, (2) effectively maximizes the initial energy gradient with respect to circuit parameters, (3) imposes negligible overhead for classical processing and does not require additional quantum resources, and (4) is compatible with any circuit topology. We demonstrate the efficacy of our approach using a quantum hardware emulator, achieving chemical accuracy for systems as large as 12 qubits with fewer than 30 two-qubit gates. Our Clifford-based Hamiltonian engineering approach offers a promising avenue for practical quantum computational chemistry on near-term quantum devices.
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Acknowledgement
Jiace Sun is thankful for the support from the Hongyan Scholarship.
Contributions
J.S. and L.W. developed the idea and implemented the codes. L.C. performed the numerical experiments. J.S., L.C., and L.W. analyzed the results and wrote the manuscript.
Conflict of Interest
The authors declare no competing financial interest.
Data Availability
The Supporting Information is available free of charge at https://pubs.acs.org/doi/10.1021/acs.jctc.3c00886.
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Distributions of the optimized parameters of the Ry ansatz and distributions of the energy gradients and optimized energies of the CHEM method
Files
ct3c00886_si_001.pdf
Additional details
Identifiers
- ISSN
- 1549-9626