A Full Quantum Eigensolver for Quantum Chemistry Simulations

Author:

Wei Shijie12ORCID,Li Hang2,Long GuiLu1234

Affiliation:

1. Beijing Academy of Quantum Information Sciences, Beijing 100193, China

2. State Key Laboratory of Low-Dimensional Quantum Physics and Department of Physics, Tsinghua University, Beijing 100084, China

3. Beijing National Research Center for Information Science and Technology and School of Information Tsinghua University, Beijing 100084, China

4. Frontier Science Center for Quantum Information, Beijing 100084, China

Abstract

Quantum simulation of quantum chemistry is one of the most compelling applications of quantum computing. It is of particular importance in areas ranging from materials science, biochemistry, and condensed matter physics. Here, we propose a full quantum eigensolver (FQE) algorithm to calculate the molecular ground energies and electronic structures using quantum gradient descent. Compared to existing classical-quantum hybrid methods such as variational quantum eigensolver (VQE), our method removes the classical optimizer and performs all the calculations on a quantum computer with faster convergence. The gradient descent iteration depth has a favorable complexity that is logarithmically dependent on the system size and inverse of the precision. Moreover, the FQE can be further simplified by exploiting a perturbation theory for the calculations of intermediate matrix elements and obtaining results with a precision that satisfies the requirement of chemistry application. The full quantum eigensolver can be implemented on a near-term quantum computer. With the rapid development of quantum computing hardware, the FQE provides an efficient and powerful tool to solve quantum chemistry problems.

Funder

Beijing Advanced Innovation Center for Future Chip

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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