4.7 Article

Wave Function Adapted Hamiltonians for Quantum Computing

Journal

JOURNAL OF CHEMICAL THEORY AND COMPUTATION
Volume 18, Issue 2, Pages 899-909

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jctc.1c01170

Keywords

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Funding

  1. Marie Sklodowska-Curie Innovative Training Network (ITN) MOQS.Molecular Quantum Simulations [955479]
  2. Ministero dell'Istruzione dell'Universita e della Ricerca (PON R I 2014-2020)
  3. Marie Curie Actions (MSCA) [955479] Funding Source: Marie Curie Actions (MSCA)

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The study introduces a modified VQE method named WAHTOR, which adapts the form of the molecular Hamiltonian to the circuit ansatz through an optimization procedure, making it more flexible. The method has been successfully applied to simulations of small molecules, demonstrating advantages over traditional VQE methods, being less dependent on circuit topology and less likely to be trapped in high-energy local minima.
The use of the variational quantum eigensolver (VQE) for quantum chemistry is one of the most promising applications for noisy intermediate-scale quantum (NISQ) devices. A major limitation is represented by the need to build compact and shallow circuit ansatzes having the variational flexibility to catch the complexity of the electronic structure problem. To alleviate this drawback, we introduce a modified VQE scheme in which the form of the molecular Hamiltonian is adapted to the circuit ansatz through an optimization procedure. Exploiting the invariance of the Hamiltonian by molecular orbital rotations, we can optimize it using gradients that can be calculated without significant computational overload. The proposed method, named Wavefunction Adapted Hamiltonian Through Orbital Rotation (WAHTOR), has been applied to small molecules in numerical state vector simulations. The results demonstrate that, at variance with standard VQE, the method is less dependent on circuit topology and less prone to be trapped into high-energy local minima. It is able to recover a significant amount of electron correlation even with only empirical ansatzes with shallow circuit depth. Noisy calculations demonstrate the robustness and feasibility of the proposed methodology and indicate the hardware requirements to effectively apply the procedure using forthcoming NISQ devices.

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