论文标题
金属到Mott绝缘子在二维1T-Tase中的过渡$ _2 $
Metal to Mott Insulator Transition in Two-dimensional 1T-TaSe$_2$
论文作者
论文摘要
当电子电子相互作用在其他电子能量尺度上占主导地位时,异国情调的集体现象通常会出现在看似普通的物质中。密切相关的现象,例如量子自旋液体和非常规的超导性,代表了主要的研究边界,并且是灵感的持续来源。密切相关的物理学的核心是莫特绝缘子的概念,从中各种相关的相位得出。二维(2D)材料的出现带来了前所未有的机会,以研究2D限制的强烈相关物理。特别是,2D材料的增强相关性和极端可调性使探索在未知参数空间之间的强烈相关系统。在这里,由于将材料变细至原子厚度,我们发现了1T键$ _2 $中的莫特绝缘子过渡的有趣金属。具体来说,我们首次发现1T键$ _2 $的质量金属性来自越过Fermi级别的乐队。有效降低尺寸可有效淬灭最初流动电子的动能,并将材料驱动到莫特绝缘状态。尺寸驱动的金属到Mott绝缘体过渡解决了金属散装和1T型$ _2 $的绝缘表面之间的长期二分法。我们的结果还将1T键$ _2 $建立为探索各种强相关现象的理想变量系统。
When electron-electron interaction dominates over other electronic energy scales, exotic, collective phenomena often emerge out of seemingly ordinary matter. The strongly correlated phenomena, such as quantum spin liquid and unconventional superconductivity, represent a major research frontier and a constant source of inspiration. Central to strongly correlated physics is the concept of Mott insulator, from which various other correlated phases derive. The advent of two-dimensional (2D) materials brings unprecedented opportunities to the study of strongly correlated physics in the 2D limit. In particular, the enhanced correlation and extreme tunability of 2D materials enables exploring strongly correlated systems across uncharted parameter space. Here, we discover an intriguing metal to Mott insulator transition in 1T-TaSe$_2$ as the material is thinned down to atomic thicknesses. Specifically, we discover, for the first time, that the bulk metallicity of 1T-TaSe$_2$ arises from a band crossing Fermi level. Reducing the dimensionality effectively quenches the kinetic energy of the initially itinerant electrons and drives the material into a Mott insulating state. The dimensionality-driven Metal to Mott insulator transition resolves the long-standing dichotomy between metallic bulk and insulating surface of 1T-TaSe$_2$. Our results additionally establish 1T-TaSe$_2$ as an ideal variable system for exploring various strongly correlated phenomena.