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首页> 外文期刊>Science Advances >Filling-enforced quantum band insulators in spin-orbit coupled crystals
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Filling-enforced quantum band insulators in spin-orbit coupled crystals

机译:自旋轨道耦合晶体中的填充增强量子带绝缘子

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An early triumph of quantum mechanics was the explanation of metallic and insulating behavior based on the filling of electronic bands. A complementary, classical picture of insulators depicts electrons as occupying localized and symmetric Wannier orbitals that resemble atomic orbitals. We report the theoretical discovery of band insulators for which electron filling forbids such an atomic description. We refer to them as filling-enforced quantum band insulators (feQBIs) because their wave functions are associated with an essential degree of quantum entanglement. Like topological insulators, which also do not admit an atomic description, feQBIs need spin-orbit coupling for their realization. However, they do not necessarily support gapless surface states. Instead, the band topology is reflected in the insulating behavior at an unconventional filling. We present tight binding models of feQBIs and show that they only occur in certain nonsymmorphic, body-centered cubic crystals.
机译:量子力学的早期胜利是基于电子带的填充来解释金属和绝缘行为。绝缘子的补充经典图片描述了电子占据类似于原子轨道的局域且对称的Wannier轨道。我们报告了带绝缘子的理论发现,其中电子填充禁止这种原子描述。我们将它们称为填充增强量子带绝缘子(feQBI),因为它们的波函数与量子纠缠的基本程度相关。像拓扑绝缘体(也不允许原子描述)一样,feQBI需要实现自旋轨道耦合。但是,它们不一定支持无缝的表面状态。取而代之的是,在非常规填充时,带拓扑反映在绝缘行为中。我们提出了feQBIs的紧密结合模型,并表明它们仅出现在某些非对称的,以人体为中心的立方晶体中。

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