假间隙
电荷密度波
凝聚态物理
扫描隧道显微镜
电荷密度
单层
光谱学
量子隧道
光电发射光谱学
电荷(物理)
材料科学
费米能级
化学物理
物理
纳米技术
X射线光电子能谱
核磁共振
兴奋剂
电子
量子力学
超导电性
铜酸盐
作者
P. Chen,Woei Wu Pai,Yang‐Hao Chan,A. Takayama,Caizhi Xu,Abhishek Karn,Shuji Hasegawa,M. Y. Chou,M. Hashimoto,A. V. Fedorov,T.‐C. Chiang
标识
DOI:10.1038/s41467-017-00641-1
摘要
Two-dimensional materials constitute a promising platform for developing nanoscale devices and systems. Their physical properties can be very different from those of the corresponding three-dimensional materials because of extreme quantum confinement and dimensional reduction. Here we report a study of TiTe2 from the single-layer to the bulk limit. Using angle-resolved photoemission spectroscopy and scanning tunneling microscopy and spectroscopy, we observed the emergence of a (2 × 2) charge density wave order in single-layer TiTe2 with a transition temperature of 92 ± 3 K. Also observed was a pseudogap of about 28 meV at the Fermi level at 4.2 K. Surprisingly, no charge density wave transitions were observed in two-layer and multi-layer TiTe2, despite the quasi-two-dimensional nature of the material in the bulk. The unique charge density wave phenomenon in the single layer raises intriguing questions that challenge the prevailing thinking about the mechanisms of charge density wave formation.Due to reduced dimensionality, the properties of 2D materials are often different from their 3D counterparts. Here, the authors identify the emergence of a unique charge density wave (CDW) order in monolayer TiTe2 that challenges the current understanding of CDW formation.
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