论文标题

超导量子硬件的完全连接的自旋模型中的有限尺寸临界

Finite-size criticality in fully connected spin models on superconducting quantum hardware

论文作者

Grossi, Michele, Kiss, Oriel, De Luca, Francesco, Zollo, Carlo, Gremese, Ian, Mandarino, Antonio

论文摘要

多体系统中集体行为的出现是导致分隔物质阶段的量子关键性。磁场中的相互作用自旋系统提供了诱人的机会,可以测试不同方法研究量子相变的方法。在这项工作中,我们利用量子算法提供的新资源来检测完全连接的旋转$ -1/2 $型号的量子关键行为。我们根据内部各向异性参数$γ($)定义合适的哈密顿量,这使我们能够检查三个自旋模型的范式示例,其晶格是完全连接的图。我们提出了一种基于在超导式transmon Qubit上运行的变异算法的方法,以检测有限大小系统的关键行为。我们评估了第一个激发态与基态,沿系统易于轴的磁化以及自旋旋转相关性之间的能量差距。我们最终报告了有关在实际量子设备上缩放这种方法的可行性的讨论,以使具有尺寸的系统,以使经典模拟开始需要大量资源。

The emergence of a collective behavior in a many-body system is responsible of the quantum criticality separating different phases of matter. Interacting spin systems in a magnetic field offer a tantalizing opportunity to test different approaches to study quantum phase transitions. In this work, we exploit the new resources offered by quantum algorithms to detect the quantum critical behaviour of fully connected spin$-1/2$ models. We define a suitable Hamiltonian depending on an internal anisotropy parameter $γ,$ that allows us to examine three paradigmatic examples of spin models, whose lattice is a fully connected graph. We propose a method based on variational algorithms run on superconducting transmon qubits to detect the critical behavior for systems of finite size. We evaluate the energy gap between the first excited state and the ground state, the magnetization along the easy-axis of the system, and the spin-spin correlations. We finally report a discussion about the feasibility of scaling such approach on a real quantum device for a system having a dimension such that classical simulations start requiring significant resources.

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