探索具有反绝热性的蜂巢晶格上费米-哈伯德模型的基态

IF 5.4 1区 物理与天体物理 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY npj Quantum Materials Pub Date : 2024-11-07 DOI:10.1038/s41535-024-00697-5
Jialiang Tang, Ruoqian Xu, Yongcheng Ding, Xusheng Xu, Yue Ban, Man-Hong Yung, Axel Pérez-Obiol, Gloria Platero, Xi Chen
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引用次数: 0

摘要

在量子退火或绝热量子计算的背景下,探索多体量子系统的基态特性通常涉及绝热过程以及精确对角化。通过反绝热驱动实现绝热的捷径,可以通过抑制能量激发来加速这些过程。受此激励,我们开发了包含辅助反绝热相互作用的变分量子算法,并将其与数字化绝热算法进行了比较。然后在基于门的量子电路上实施这些算法,利用多达 26 个量子比特的系统探索蜂巢晶格上费米-哈伯德模型的基态。比较结果表明,反绝热启发式解析优于传统的哈密顿变分式解析。此外,还分析了特劳特步骤的数量和持续时间,以了解和减少误差。鉴于该模型与凝聚态材料的相关性,我们的研究为在嘈杂的中尺度量子时代使用反绝热的变分量子算法探索量子材料铺平了道路。
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Exploring ground states of Fermi-Hubbard model on honeycomb lattices with counterdiabaticity

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.

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来源期刊
npj Quantum Materials
npj Quantum Materials Materials Science-Electronic, Optical and Magnetic Materials
CiteScore
10.60
自引率
3.50%
发文量
107
审稿时长
6 weeks
期刊介绍: npj Quantum Materials is an open access journal that publishes works that significantly advance the understanding of quantum materials, including their fundamental properties, fabrication and applications.
期刊最新文献
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