Variational Quantum Simulations of Finite-Temperature Dynamical
Properties via Thermofield Dynamics
- URL: http://arxiv.org/abs/2206.05571v1
- Date: Sat, 11 Jun 2022 17:22:55 GMT
- Title: Variational Quantum Simulations of Finite-Temperature Dynamical
Properties via Thermofield Dynamics
- Authors: Chee Kong Lee, Shi-Xin Zhang, Chang-Yu Hsieh, Shengyu Zhang, and Liang
Shi
- Abstract summary: We present a variational quantum simulation protocol based on the thermofield dynamics formalism.
Our approach is capable of simulating non-equilibrium phenomena which have not been previously explored with quantum computers.
- Score: 19.738342279357845
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: The recent advancement of quantum computer hardware offers the potential to
simulate quantum many-body systems beyond the capability of its classical
counterparts. However, most current works focus on simulating the ground-state
properties or pure-state quantum dynamics of quantum systems.
Finite-temperature physics are much less explored, and existing literature
mainly consider equilibrium properties. Here we present a variational quantum
simulation protocol based on the thermofield dynamics formalism to simulate the
dynamical and non-equilibrium finite-temperature properties of quantum systems
with near-term quantum computers. Compared to previous approaches in computing
the equilibrium dynamical properties, our approach does not require the
computationally expensive initial state sampling. More importantly, our
approach is capable of simulating non-equilibrium phenomena which have not been
previously explored with quantum computers. Numerical simulations of molecular
absorption spectrum and spin quenched dynamics affirm the capability of our
method.
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