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具有层取向可调高电导率和优异疏水性的二维PtTe的晶圆级生长。

Wafer-Scale Growth of 2D PtTe with Layer Orientation Tunable High Electrical Conductivity and Superior Hydrophobicity.

作者信息

Wang Mengjing, Ko Tae-Jun, Shawkat Mashiyat Sumaiya, Han Sang Sub, Okogbue Emmanuel, Chung Hee-Suk, Bae Tae-Sung, Sattar Shahid, Gil Jaeyoung, Noh Chanwoo, Oh Kyu Hwan, Jung YounJoon, Larsson J Andreas, Jung Yeonwoong

机构信息

NanoScience Technology Center, University of Central Florida, Orlando, Florida 32826, United States.

Department of Electrical and Computer Engineering, University of Central Florida, Orlando, Florida 32816, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Mar 4;12(9):10839-10851. doi: 10.1021/acsami.9b21838. Epub 2020 Feb 20.

Abstract

Platinum ditelluride (PtTe) is an emerging semimetallic two-dimensional (2D) transition-metal dichalcogenide (TMDC) crystal with intriguing band structures and unusual topological properties. Despite much devoted efforts, scalable and controllable synthesis of large-area 2D PtTe with well-defined layer orientation has not been established, leaving its projected structure-property relationship largely unclarified. Herein, we report a scalable low-temperature growth of 2D PtTe layers on an area greater than a few square centimeters by reacting Pt thin films of controlled thickness with vaporized tellurium at 400 °C. We systematically investigated their thickness-dependent 2D layer orientation as well as its correlated electrical conductivity and surface property. We unveil that 2D PtTe layers undergo three distinct growth mode transitions, i.e., horizontally aligned holey layers, continuous layer-by-layer lateral growth, and horizontal-to-vertical layer transition. This growth transition is a consequence of competing thermodynamic and kinetic factors dictated by accumulating internal strain, analogous to the transition of Frank-van der Merwe (FM) to Stranski-Krastanov (SK) growth in epitaxial thin-film models. The exclusive role of the strain on dictating 2D layer orientation has been quantitatively verified by the transmission electron microscopy (TEM) strain mapping analysis. These centimeter-scale 2D PtTe layers exhibit layer orientation tunable metallic transports yielding the highest value of ∼1.7 × 10 S/m at a certain critical thickness, supported by a combined verification of density functional theory (DFT) and electrical measurements. Moreover, they show intrinsically high hydrophobicity manifested by the water contact angle (WCA) value up to ∼117°, which is the highest among all reported 2D TMDCs of comparable dimensions and geometries. Accordingly, this study confirms the high material quality of these emerging large-area 2D PtTe layers, projecting vast opportunities employing their tunable layer morphology and semimetallic properties from investigations of novel quantum phenomena to applications in electrocatalysis.

摘要

二碲化铂(PtTe₂)是一种新兴的半金属二维(2D)过渡金属二硫属化物(TMDC)晶体,具有引人入胜的能带结构和不寻常的拓扑性质。尽管付出了诸多努力,但尚未实现具有明确层取向的大面积二维PtTe₂的可扩展且可控的合成,其预测的结构-性能关系在很大程度上仍不明确。在此,我们报告了通过在400°C下使具有可控厚度的Pt薄膜与汽化的碲反应,在大于几平方厘米的面积上可扩展地低温生长二维PtTe₂层。我们系统地研究了它们与厚度相关的二维层取向以及相关的电导率和表面性质。我们揭示二维PtTe₂层经历了三种不同的生长模式转变,即水平排列的多孔层、连续的逐层横向生长以及水平到垂直层的转变。这种生长转变是由累积的内应变所决定的竞争热力学和动力学因素的结果,类似于外延薄膜模型中从弗兰克-范德梅韦(FM)生长到斯特兰斯基-克拉斯坦诺夫(SK)生长的转变。通过透射电子显微镜(TEM)应变映射分析定量验证了应变在决定二维层取向方面的独特作用。这些厘米级的二维PtTe₂层表现出层取向可调的金属传输特性,在一定临界厚度下产生高达约1.7×10⁴ S/m的最高值,这得到了密度泛函理论(DFT)和电学测量的联合验证。此外,它们表现出固有的高疏水性,水接触角(WCA)值高达约117°,这在所有报道的具有可比尺寸和几何形状的二维TMDC中是最高的。因此,本研究证实了这些新兴的大面积二维PtTe₂层具有高质量的材料,从新型量子现象的研究到电催化应用,利用其可调的层形态和半金属性质展现出广阔的机会。

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