论文标题

观察拓扑半学$ _x $ te $ _2 $中可调的1D Dirac Fermion的尺寸 - 交叉的观察

Observation of Dimension-Crossover of a Tunable 1D Dirac Fermion in Topological Semimetal NbSi$_x$Te$_2$

论文作者

Zhang, Jing, Lv, Yangyang, Feng, Xiaolong, Liang, Aiji, Xia, Wei, Mo, Sung-Kwan, Chen, Cheng, Xue, Jiamin, Yang, Shengyuan A., Yang, Lexian, Guo, Yanfeng, Chen, Yanbin, Chen, Yulin, Liu, Zhongkai

论文摘要

低维度的凝结物质系统表现出在三个维度中不存在的新兴物理学。当电子局限于一个维度(1D)时,出现了一些重要的电子状态,例如电荷密度波,旋转电荷分离和Su-Schrieffer-Heeger(SSH)拓扑状态。但是,清楚地了解了目前缺乏一维电子特性与拓扑连接的方式。在这里,我们系统地研究了特征性的1D Dirac Fermion电子结构,该结构源自金属NBTE $ _2 $链条的链条,使用角度响应的光发射光谱图。 We found the Dirac fermion forms a Dirac nodal line structure protected by the combined $\widetilde{\mathcal{M}}{\rm_y}$ and time-reversal symmetry T and proves the NbSi$_x$Te$_2$ system as a topological semimetal, in consistent with the ab-initio calculations.随着$ x $的减少,相邻的NBTE2链之间的相互作用增加,而Dirac Fermion通过尺寸从1D到2D,这证明了其Fermi表面和Fermi速度在Brillouin跨Brillouin区域一致的变化与Dirac SSH模型一致。我们的发现展示了一个可调的1D狄拉克电子系统,该系统提供了一个多功能平台,用于探索有趣的1D物理和设备应用。

Condensed matter systems in low dimensions exhibit emergent physics that does not exist in three dimensions. When electrons are confined to one dimension (1D), some significant electronic states appear, such as charge density wave, spin-charge separations and Su-Schrieffer-Heeger (SSH) topological state. However, a clear understanding of how the 1D electronic properties connects with topology is currently lacking. Here we systematically investigated the characteristic 1D Dirac fermion electronic structure originated from the metallic NbTe$_2$ chains on the surface of the composition-tunable layered compound NbSi$_x$Te$_2$ ($x$ = 0.40 and 0.43) using angle-resolved photoemission spectroscopy. We found the Dirac fermion forms a Dirac nodal line structure protected by the combined $\widetilde{\mathcal{M}}{\rm_y}$ and time-reversal symmetry T and proves the NbSi$_x$Te$_2$ system as a topological semimetal, in consistent with the ab-initio calculations. As $x$ decreases, the interaction between adjacent NbTe2 chains increases and Dirac fermion goes through a dimension-crossover from 1D to 2D, as evidenced by the variation of its Fermi surface and Fermi velocity across the Brillouin zone in consistence with a Dirac SSH model. Our findings demonstrate a tunable 1D Dirac electron system, which offers a versatile platform for the exploration of intriguing 1D physics and device applications.

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