Fermionic approach to variational quantum simulation of Kitaev spin
models
- URL: http://arxiv.org/abs/2204.05322v1
- Date: Mon, 11 Apr 2022 18:00:01 GMT
- Title: Fermionic approach to variational quantum simulation of Kitaev spin
models
- Authors: Ammar Jahin, Andy C. Y. Li, Thomas Iadecola, Peter P. Orth, Gabriel N.
Perdue, Alexandru Macridin, M. Sohaib Alam and Norm M. Tubman
- Abstract summary: Kitaev spin models are well known for being exactly solvable in a certain parameter regime via a mapping to free fermions.
We use classical simulations to explore a novel variational ansatz that takes advantage of this fermionic representation.
We also comment on the implications of our results for simulating non-Abelian anyons on quantum computers.
- Score: 50.92854230325576
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We use the variational quantum eigensolver (VQE) to simulate Kitaev spin
models with and without integrability breaking perturbations, focusing in
particular on the honeycomb and square-octagon lattices. These models are well
known for being exactly solvable in a certain parameter regime via a mapping to
free fermions. We use classical simulations to explore a novel variational
ansatz that takes advantage of this fermionic representation and is capable of
expressing the exact ground state in the solvable limit. We also demonstrate
that this ansatz can be extended beyond this limit to provide excellent
accuracy when compared to other VQE approaches. In certain cases, this
fermionic representation is advantageous because it reduces by a factor of two
the number of qubits required to perform the simulation. We also comment on the
implications of our results for simulating non-Abelian anyons on quantum
computers.
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