论文标题
观察二维离子晶体中沮丧的量子磁性
Observing frustrated quantum magnetism in two-dimensional ion crystals
论文作者
论文摘要
二维(2D)量子磁性是密切相关的多体物理学的范式。可以通过使用可控的量子模拟器来加快对2D量子磁性的理解,该模拟器忠实地映射了2D旋转汉密尔顿人。 2D量子模拟器可以表现出外来现象,例如沮丧的量子磁性和拓扑顺序,可用于显示量子计算优势。正在开发许多实验平台,包括Rydberg原子和超导退火器。但是,由于捕获的离子系统显示出最先进的可控性和量子相干性,因此在一维链中探索了量子磁性。在这里,我们报告了用2D离子晶体对沮丧的量子磁性的模拟。我们为量子磁铁创建了各种自旋旋转相互作用,包括那些通过驱动不同振动模式表现出挫败感的自旋相互作用,并绝热地准备相应的接地状态。实验测量的基态与理论预测一致,并且在二维中的几何挫败自旋模型中是高度退化的。通过将B场的时间演变逆转到初始值,然后测量其余状态与初始状态一致的程度来探测基态的量子相干性。我们的结果打开了用2D离子晶体进行量子模拟的大门。
Two-dimensional (2D) quantum magnetism is a paradigm in strongly correlated many-body physics. The understanding of 2D quantum magnetism can be expedited by employing a controllable quantum simulator that faithfully maps 2D-spin Hamiltonians. The 2D quantum simulators can exhibit exotic phenomena such as frustrated quantum magnetism and topological order and can be used to show quantum computational advantages. Many experimental platforms are being developed, including Rydberg atoms and superconducting annealers. However, with trapped-ion systems, which showed the most advanced controllability and quantum coherence, quantum magnetism was explored in one-dimensional chains. Here, we report simulations of frustrated quantum magnetism with 2D ion crystals. We create a variety of spin-spin interactions for quantum magnets, including those that exhibit frustration by driving different vibrational modes and adiabatically prepare the corresponding ground states. The experimentally measured ground states are consistent with the theoretical predictions and are highly degenerate for geometrically frustrated spin models in two dimensions. Quantum coherence of the ground states is probed by reversing the time evolution of the B-field to the initial value and then measuring the extent to which the remaining state coincides with the initial state. Our results open the door for quantum simulations with 2D ion crystals.