School of Electrical and Computer Engineering, ‡School of Industrial Engineering, §School of Mechanical Engineering, and ∥Birck Nanotechnology Center, Purdue University , West Lafayette, Indiana 47907, United States.
Nano Lett. 2016 Dec 14;16(12):7364-7369. doi: 10.1021/acs.nanolett.6b02629. Epub 2016 Nov 29.
Transition metal pentatelluride ZrTe is a versatile material in condensed-matter physics and has been intensively studied since the 1980s. The most fascinating feature of ZrTe is that it is a 3D Dirac semimetal which has linear energy dispersion in all three dimensions in momentum space. Structure-wise, ZrTe is a layered material held together by weak interlayer van der Waals force. The combination of its unique band structure and 2D atomic structure provides a fertile ground for more potential exotic physical phenomena in ZrTe related to 3D Dirac semimentals. However, the physical properties of its few-layer form have yet to be thoroughly explored. Here we report strong optical and electrical in-plane anisotropy of mechanically exfoliated few-layer ZrTe. Raman spectroscopy shows a significant intensity change with sample orientations, and the behavior of angle-resolved phonon modes at the Γ point is explained by theoretical calculations. DC conductance measurement indicates a 50% of difference along different in-plane directions. The diminishing of resistivity anomaly in few-layer samples indicates the evolution of band structure with a reduced thickness. A low-temperature Hall experiment sheds light on more intrinsic anisotropic electrical transport, with a hole mobility of 3000 and 1500 cm/V·s along the a-axis and c-axis, respectively. Pronounced quantum oscillations in magnetoresistance are observed at low temperatures with the highest electron mobility up to 44 000 cm/V·s.
过渡金属五碲化物 ZrTe 是凝聚态物理中一种用途广泛的材料,自 20 世纪 80 年代以来就一直受到深入研究。ZrTe 最引人注目的特点是它是一种三维狄拉克半金属,在动量空间的所有三个维度上都具有线性能量色散。在结构上,ZrTe 是一种由弱层间范德华力结合在一起的层状材料。其独特的能带结构和二维原子结构的结合,为与三维狄拉克半金属相关的 ZrTe 中更多潜在的奇异物理现象提供了肥沃的土壤。然而,其少层形式的物理性质尚未得到彻底探索。在这里,我们报告了机械剥离的少层 ZrTe 具有很强的面内各向异性的光学和电学性质。拉曼光谱显示出随样品取向的显著强度变化,而在 Γ 点的角分辨声子模式的行为则通过理论计算来解释。直流电导测量表明,不同面内方向的差异为 50%。少层样品中电阻率异常的减小表明了带结构随厚度减小的演变。低温霍尔实验揭示了更内在的各向异性电输运,沿 a 轴和 c 轴的空穴迁移率分别为 3000 和 1500 cm/V·s。在低温下观察到磁阻的明显量子振荡,最高电子迁移率高达 44000 cm/V·s。