Quantum circuit matrix product state ansatz for large-scale simulations
of molecules
- URL: http://arxiv.org/abs/2301.06376v1
- Date: Mon, 16 Jan 2023 11:43:43 GMT
- Title: Quantum circuit matrix product state ansatz for large-scale simulations
of molecules
- Authors: Yi Fan, Jie Liu, Zhenyu Li and Jinlong Yang
- Abstract summary: We propose to calculate the ground state energies of molecular systems by variationally optimizing quantum circuit MPS with a relatively small number of qubits.
QCMPS simulation of a linear molecule with 50 orbitals can reach the chemical accuracy using only 6 qubits at a moderate circuit depth.
- Score: 9.601481589619183
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: As in the density matrix renormalization group (DMRG) method, approximating
many-body wave function of electrons using a matrix product state (MPS) is a
promising way to solve electronic structure problems. The expressibility of an
MPS is determined by the size of the matrices or in other words the bond
dimension, which unfortunately should be very large in many cases. In this
study, we propose to calculate the ground state energies of molecular systems
by variationally optimizing quantum circuit MPS (QCMPS) with a relatively small
number of qubits. It is demonstrated that with carefully chosen circuit
structure and orbital localization scheme, QCMPS can reach a similar accuracy
as that achieved in DMRG with an exponentially large bond dimension. QCMPS
simulation of a linear molecule with 50 orbitals can reach the chemical
accuracy using only 6 qubits at a moderate circuit depth. These results suggest
that QCMPS is a promising wave function ansatz in the variational quantum
eigensolver algorithm for molecular systems.
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