Adaptive variational quantum minimally entangled typical thermal states for finite temperature simulations

Author:

Getelina João C.1,Gomes Niladri1,Iadecola Thomas12,Orth Peter P.312,Yao Yong-Xin12

Affiliation:

1. Ames Laboratory

2. Iowa State University

3. Saarland University

Abstract

Scalable quantum algorithms for the simulation of quantum many-body systems in thermal equilibrium are important for predicting properties of quantum matter at finite temperatures. Here we describe and benchmark a quantum computing version of the minimally entangled typical thermal states (METTS) algorithm for which we adopt an adaptive variational approach to perform the required quantum imaginary time evolution. The algorithm, which we name AVQMETTS, dynamically generates compact and problem-specific quantum circuits, which are suitable for noisy intermediate-scale quantum (NISQ) hardware. We benchmark AVQMETTS on statevector simulators and perform thermal energy calculations of integrable and nonintegrable quantum spin models in one and two dimensions and demonstrate an approximately linear system-size scaling of the circuit complexity. We further map out the finite-temperature phase transition line of the two-dimensional transverse field Ising model. Finally, we study the impact of noise on AVQMETTS calculations using a phenomenological noise model.

Funder

National Energy Research Scientific Computing Center

Office of Science

United States Department of Energy

Publisher

Stichting SciPost

Subject

General Physics and Astronomy

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Variational quantum time evolution without the quantum geometric tensor;Physical Review Research;2024-02-05

2. Stochastic Approximation of Variational Quantum Imaginary Time Evolution;2023 IEEE International Conference on Quantum Computing and Engineering (QCE);2023-09-17

3. Hamiltonian Learning from Time Dynamics Using Variational Algorithms;The Journal of Physical Chemistry A;2023-03-29

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