Exploring ground states of Fermi-Hubbard model on honeycomb lattices with counterdiabaticity

Jialiang Tang, Ruoqian Xu, Yongcheng Ding, Xusheng Xu, Yue Ban, Man Hong Yung, Axel Pérez-Obiol, Gloria Platero, Xi Chen*

*Autor corresponent d’aquest treball

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5 Citacions (Web of Science)

Resum

Exploring the ground state properties of many-body quantum systems conventionally involves adiabatic processes, alongside exact diagonalization, in the context of quantum annealing or adiabatic quantum computation. Shortcuts to adiabaticity by counter-diabatic driving serve to accelerate these processes by suppressing energy excitations. Motivated by this, we develop variational quantum algorithms incorporating the auxiliary counter-diabatic interactions, comparing them with digitized adiabatic algorithms. These algorithms are then implemented on gate-based quantum circuits to explore the ground states of the Fermi-Hubbard model on honeycomb lattices, utilizing systems with up to 26 qubits. The comparison reveals that the counter-diabatic inspired ansatz is superior to traditional Hamiltonian variational ansatz. Furthermore, the number and duration of Trotter steps are analyzed to understand and mitigate errors. Given the model’s relevance to materials in condensed matter, our study paves the way for using variational quantum algorithms with counterdiabaticity to explore quantum materials in the noisy intermediate-scale quantum era.
Idioma originalAnglès
Número d’article87
Nombre de pàgines10
Revistanpj Quantum Materials
Volum9
Número1
DOIs
Estat de la publicacióPublicada - 7 de nov. 2024

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