论文标题

分段线性链中拓扑非平凡的自旋式态的出现

Emergence of Topologically Non-trivial Spin-polarized States in a Segmented Linear Chain

论文作者

Pham, Thang, Oh, Sehoon, Stonemeyer, Scott, Shevitski, Brian, Cain, Jeffrey D., Song, Chengyu, Ercius, Peter, Cohen, Marvin L., Zettl, Alex

论文摘要

具有新颖或有用特性的新材料的合成是凝结物理学和材料科学领域中最重要的驱动因素之一。当这种发现指出有希望的未来基础研究和应用时,这种发现尤其重要。范德华键合的材料由低维构件组成,当在原子薄的形式1-8中分离时,已显示出出现的出现特性。在这里,我们报告了以迄今未知的分段线性链形式发现过渡金属硫元化的,其中每个构建块由两个hafnium原子和九个柜子原子(HF2TE9)组成,均为van der waal waals offered端到端。基于密度功能理论的第一原则计算揭示了分割链的电子结构中与晶体对称性相关的引人注目的特征,包括所选能量带态的巨型自旋分裂和非平凡拓扑阶段。原子分辨率扫描透射电子显微镜揭示了在碳纳米管中空心核心内分离的单分段HF2TE9链,其结构与理论预测一致。范德华(Van der Waals)键的分段线性链过渡金属硫化盐材料可以在低维,磁性,磁性和拓扑结晶系统中为新的机会打开新的机会。

The synthesis of new materials with novel or useful properties is one of the most important drivers in the fields of condensed matter physics and materials science. Discoveries of this kind are especially significant when they point to promising future basic research and applications. Van der Waals bonded materials comprised of lower-dimensional building blocks have been shown to exhibit emergent properties when isolated in an atomically thin form1-8. Here, we report the discovery of a transition metal chalcogenide in a heretofore unknown segmented linear chain form, where basic building blocks each consisting of two hafnium atoms and nine tellurium atoms (Hf2Te9) are van der Waals bonded end-to-end. First-principle calculations based on density functional theory reveal striking crystal-symmetry-related features in the electronic structure of the segmented chain, including giant spin splitting and nontrivial topological phases of selected energy band states. Atomic-resolution scanning transmission electron microscopy reveals single segmented Hf2Te9 chains isolated within the hollow cores of carbon nanotubes, with a structure consistent with theoretical predictions. Van der Waals-bonded segmented linear chain transition metal chalcogenide materials could open up new opportunities in low-dimensional, gate-tunable, magnetic and topological crystalline systems.

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