论文标题

直接可视化原子粉红色葡萄构中的平衡外结构变换

Direct Visualisation of Out-of-Equilibrium Structural Transformations in Atomically-Thin Chalcogenides

论文作者

Kumar, Pawan, Horwath, James P., Foucher, Alexandre C., Price, Christopher C., Acero, Natalia, Shenoy, Vivek B., Stach, Eric A., Jariwala, Deep

论文摘要

由于其非凡的电子和光学特性,二维(2D)过渡金属二核苷(TMDC)已成为持续研究的主题。由于原子可以在单层内或由于不同层可以堆叠的方式,因此它们还表现出广泛的结构相。在这里,我们报告了在高度非平衡的热力学条件下,原子薄层中结构转化的直接访问性研究的首次研究。我们使用实时纠正扫描透射电子显微镜在原子量表上探测这些转换,并观察到所得结构和相位对加热速率和温度的强烈依赖性。快速加热速率(25 c/sec)产生的高度有序的晶体岛岛的大小小于20 nm,由2H和3R相组成。然而,缓慢的加热速率(25 c/min)产生纳米晶和亚化学计量的无定形区域。这些差异用不同的硫蒸发和重新沉积速率来解释。使用非平衡加热速率来实现2D原子层的高度结晶和量子限制的特征,这是一条新的途径,以合成原子薄的,横向限制的纳米疗法,并为研究限制的尺寸中的基本电子现象提供了新的途径。

Two-dimensional (2D) transition metal dichalcogenides (TMDCs) have been the subject of sustained research interest due to their extraordinary electronic and optical properties. They also exhibit a wide range of structural phases because of the different orientations that the atoms can have within a single layer, or due to the ways that different layers can stack. Here we report the first study of direct-visualization of structural transformations in atomically-thin layers under highly non-equilibrium thermodynamic conditions. We probe these transformations at the atomic scale using real-time, aberration corrected scanning transmission electron microscopy and observe strong dependence of the resulting structures and phases on both heating rate and temperature. A fast heating rate (25 C/sec) yields highly ordered crystalline hexagonal islands of sizes of less than 20 nm which are composed of a mixture of 2H and 3R phases. However, a slow heating rate (25 C/min) yields nanocrystalline and sub-stoichiometric amorphous regions. These differences are explained by different rates of sulfur evaporation and redeposition. The use of non-equilibrium heating rates to achieve highly crystalline and quantum-confined features from 2D atomic layers present a new route to synthesize atomically-thin, laterally confined nanostrucutres and opens new avenues for investigating fundamental electronic phenomena in confined dimensions.

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