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Unconventional transformation of spin Dirac phase across a topological quantum phase transition

机译:自旋狄拉克相跨拓扑量子相变的非常规转变

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The topology of a topological material can be encoded in its surface states. These surface states can only be removed by a bulk topological quantum phase transition into a trivial phase. Here we use photoemission spectroscopy to image the formation of protected surface states in a topological insulator as we chemically tune the system through a topological transition. Surprisingly, we discover an exotic spin-momentum locked, gapped surface state in the trivial phase that shares many important properties with the actual topological surface state in anticipation of the change of topology. Using a spin-resolved measurement, we show that apart from a surface bandgap these states develop spin textures similar to the topological surface states well before the transition. Our results offer a general paradigm for understanding how surface states in topological phases arise from a quantum phase transition and are suggestive for the future realization of Weyl arcs, condensed matter supersymmetry and other fascinating phenomena in the vicinity of a quantum criticality.
机译:拓扑材料的拓扑可以在其表面状态下进行编码。这些表面态只能通过整体拓扑量子相转变为平凡相来除去。在这里,当我们通过拓扑跃迁对系统进行化学调谐时,我们使用光发射光谱来成像拓扑绝缘体中受保护的表面状态的形成。出乎意料的是,我们发现了一个琐碎的阶段中一个奇特的自旋动量锁定,有间隙的表面状态,该表面状态在预测拓扑变化时与实际的拓扑表面状态具有许多重要的特性。使用自旋分辨的测量结果,我们表明,除了表面带隙以外,这些状态还会在过渡之前很早就形成类似于拓扑表面状态的自旋纹理。我们的结果为理解拓扑相中的表面态如何从量子相变中产生提供了一般范式,并为未来实现Weyl电弧,凝聚态超对称性以及在量子临界附近的其他引人入胜的现象提供了提示。

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