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具有高磁电阻和迁移率的狄拉克半金属 ZrSiS 的晶体生长。

Crystal growth of Dirac semimetal ZrSiS with high magnetoresistance and mobility.

机构信息

Institute of Physics, Academia Sinica, Taipei, 10617, Taiwan.

Center for Condensed Matter Sciences, National Taiwan University, Taipei 10617, Taiwan.

出版信息

Sci Rep. 2017 Jan 18;7:40603. doi: 10.1038/srep40603.

Abstract

High quality single crystal ZrSiS as a theoretically predicted Dirac semimetal has been grown successfully using a vapor phase transport method. The single crystals of tetragonal structure are easy to cleave into perfect square-shaped pieces due to the van der Waals bonding between the sulfur atoms of the quintuple layers. Physical property measurement results including resistivity, Hall coefficient (R), and specific heat are reported. The transport and thermodynamic properties suggest a Fermi liquid behavior with two Fermi pockets at low temperatures. At T = 3 K and magnetic field of Hǁc up to 9 Tesla, large magneto-resistance up to 8500% and 7200% for Iǁ and Iǁ were found. Shubnikov de Haas (SdH) oscillations were identified from the resistivity data, revealing the existence of two Fermi pockets at the Fermi level via the fast Fourier transform (FFT) analysis. The Hall coefficient (R) showed hole-dominated carriers with a high mobility of 3.05 × 10 cm V s at 3 K. ZrSiS has been confirmed to be a Dirac semimetal by the Dirac cone mapping near the X-point via angle resolved photoemission spectroscopy (ARPES) with a Dirac nodal line near the Fermi level identified using scanning tunneling spectroscopy (STS).

摘要

成功地使用气相输运法生长出高质量的 ZrSiS 单晶,这是一种理论预测的狄拉克半金属。由于五重层的硫原子之间存在范德华键,四方结构的单晶很容易被劈裂成完美的正方形。报道了包括电阻率、霍尔系数(R)和比热在内的物理性质测量结果。输运和热力学性质表明,在低温下存在两个费米口袋的费米液体行为。在 T=3 K 和磁场高达 9 特斯拉的情况下,在 I∥ 和 I⊥方向上发现了高达 8500%和 7200%的大磁阻。从电阻率数据中识别出了舒布尼科夫-德哈斯(SdH)振荡,通过快速傅里叶变换(FFT)分析证实了费米能级处存在两个费米口袋。霍尔系数(R)表明在 3 K 时,载流子为空穴主导,迁移率高达 3.05×10^4cm^2 V s。通过角分辨光电子能谱(ARPES)在 X 点附近进行的狄拉克锥映射以及使用扫描隧道谱(STS)确定的费米能级附近的狄拉克节线,已经证实 ZrSiS 是一种狄拉克半金属。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0488/5241817/12db30240bc2/srep40603-f1.jpg

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