NSF Nanoscale Science and Engineering Center (NSEC), 3112 Etcheverry Hall, University of California, Berkeley, California 94720, USA.
Department of Materials Science and Engineering, Stanford University, Stanford, California 94305, USA.
Nature. 2017 Oct 26;550(7677):487-491. doi: 10.1038/nature24043. Epub 2017 Oct 11.
Monolayers of transition-metal dichalcogenides (TMDs) exhibit numerous crystal phases with distinct structures, symmetries and physical properties. Exploring the physics of transitions between these different structural phases in two dimensions may provide a means of switching material properties, with implications for potential applications. Structural phase transitions in TMDs have so far been induced by thermal or chemical means; purely electrostatic control over crystal phases through electrostatic doping was recently proposed as a theoretical possibility, but has not yet been realized. Here we report the experimental demonstration of an electrostatic-doping-driven phase transition between the hexagonal and monoclinic phases of monolayer molybdenum ditelluride (MoTe). We find that the phase transition shows a hysteretic loop in Raman spectra, and can be reversed by increasing or decreasing the gate voltage. We also combine second-harmonic generation spectroscopy with polarization-resolved Raman spectroscopy to show that the induced monoclinic phase preserves the crystal orientation of the original hexagonal phase. Moreover, this structural phase transition occurs simultaneously across the whole sample. This electrostatic-doping control of structural phase transition opens up new possibilities for developing phase-change devices based on atomically thin membranes.
过渡金属二卤化物(TMD)的单层具有许多具有不同结构、对称性和物理性质的晶体相。探索二维中这些不同结构相之间的物理转变可能为改变材料性能提供一种手段,这对潜在的应用具有重要意义。TMD 中的结构相变迄今为止是通过热或化学手段来诱导的;最近有人提出通过静电掺杂对晶体相进行纯静电控制是一种理论可能性,但尚未实现。在这里,我们报告了单层二钼二碲(MoTe)的六方相和单斜相之间的静电掺杂驱动的相转变的实验证明。我们发现,拉曼光谱中的相转变显示出滞后环,并且可以通过增加或减小栅极电压来反转。我们还结合二次谐波产生光谱和偏振分辨拉曼光谱来证明所诱导的单斜相保留了原始六方相的晶体取向。此外,这种结构相变在整个样品中同时发生。这种静电掺杂控制结构相变为开发基于原子薄膜的相变器件开辟了新的可能性。