DOAJ Open Access 2026

Efficient Berry phase calculation via adaptive variational quantum computing approach

Martin Mootz Yong-Xin Yao

Abstrak

We present an adaptive variational quantum algorithm to estimate the Berry phase accumulated by a nondegenerate ground state under cyclic, adiabatic evolution of a time-dependent Hamiltonian. Our method leverages cyclic adiabatic evolution of the Hamiltonian and employs adaptive variational quantum algorithms for state preparation and evolution, optimizing circuit efficiency while maintaining high accuracy. We benchmark our approach on dimerized Fermi–Hubbard chains with four sites, demonstrating precise Berry phase simulations in both noninteracting and interacting regimes. Our results show that circuit depths reach up to 106 layers for noninteracting systems and increase to 279 layers for interacting systems due to added complexity. In addition, we demonstrate the robustness of our scheme across a wide range of parameters governing adiabatic evolution and variational algorithms. These findings highlight the potential of adaptive variational quantum algorithms for advancing quantum simulations of topological materials and computing geometric phases in strongly correlated systems.

Penulis (2)

M

Martin Mootz

Y

Yong-Xin Yao

Format Sitasi

Mootz, M., Yao, Y. (2026). Efficient Berry phase calculation via adaptive variational quantum computing approach. https://doi.org/10.1063/5.0294540

Akses Cepat

Lihat di Sumber doi.org/10.1063/5.0294540
Informasi Jurnal
Tahun Terbit
2026
Sumber Database
DOAJ
DOI
10.1063/5.0294540
Akses
Open Access ✓