论文标题
自旋量子模拟器上三维拓扑绝缘子的量子相的实验检测
Experimental Detection of the Quantum Phases of a Three-Dimensional Topological Insulator on a Spin Quantum Simulator
论文作者
论文摘要
近年来,对物质拓扑阶段的检测成为一个核心问题。通常,在凝结物理学中实现特定拓扑阶段的实现依赖于探测实际材料的下面表面带分散或量子传输特征,这可能是不完美甚至不存在的。另一方面,量子模拟提供了一种直接测量通用量子计算机上拓扑不变的替代方法。但是,由于当前实验平台的技术局限性,实验证明高维拓扑阶段仍然是一个挑战。在这里,我们研究了AIII(手性统一)对称性类中的三维拓扑绝缘子,该类别缺乏实验性实现。使用核磁共振系统,我们在实验上证明了它们的拓扑特性,其中采用了动态淬火方法,并观察到动量空间中的动力学体积 - 结合对应关系。结果,拓扑不变性在带回变表面的精度高精度,表现出稳健性,对逆转效果。我们的工作铺平了通过可控量子阶段过渡到更高维度和更复杂系统的物质拓扑阶段的量子模拟的道路。
The detection of topological phases of matter becomes a central issue in recent years. Conventionally, the realization of a specific topological phase in condensed matter physics relies on probing the underlying surface band dispersion or quantum transport signature of a real material, which may be imperfect or even absent. On the other hand, quantum simulation offers an alternative approach to directly measure the topological invariant on a universal quantum computer. However, experimentally demonstrating high-dimensional topological phases remains a challenge due to the technical limitations of current experimental platforms. Here, we investigate the three-dimensional topological insulators in the AIII (chiral unitary) symmetry class which yet lack experimental realization. Using the nuclear magnetic resonance system, we experimentally demonstrate their topological properties, where a dynamical quenching approach is adopted and the dynamical bulk-boundary correspondence in the momentum space is observed. As a result, the topological invariants are measured with high precision on the band-inversion surface, exhibiting robustness to the decoherence effect. Our work paves the way towards the quantum simulation of topological phases of matter in higher dimensions and more complex systems through controllable quantum phases transitions.