Okogbue Emmanuel, Ko Tae-Jun, Han Sang Sub, Shawkat Mashiyat Sumaiya, Wang Mengjing, Chung Hee-Suk, Oh Kyu Hwan, Jung Yeonwoong
NanoScience Technology Center, University of Central Florida, Orlando, Florida 32826, USA.
Analytical Research Division, Korea Basic Science Institute, Jeonju 54907, South Korea.
Nanoscale. 2020 May 21;12(19):10647-10655. doi: 10.1039/d0nr01845g.
Two-dimensional (2D) transition metal dichalcogenide (TMD) layers have gained increasing attention for a variety of emerging electrical, thermal, and optical applications. Recently developed metallic 2D TMD layers have been projected to exhibit unique attributes unattainable in their semiconducting counterparts; e.g., much higher electrical and thermal conductivities coupled with mechanical flexibility. In this work, we explored 2D platinum ditelluride (2D PtTe2) layers - a relatively new class of metallic 2D TMDs - by studying their previously unexplored electro-thermal properties for unconventional window applications. We prepared wafer-scale 2D PtTe2 layer-coated optically transparent and mechanically flexible willow glasses via a thermally-assisted tellurization of Pt films at a low temperature of 400 °C. The 2D PtTe2 layer-coated windows exhibited a thickness-dependent optical transparency and electrical conductivity of >106 S m-1 - higher than most of the previously explored 2D TMDs. Upon the application of electrical bias, these windows displayed a significant increase in temperature driven by Joule heating as confirmed by the infrared (IR) imaging characterization. Such superior electro-thermal conversion efficiencies inherent to 2D PtTe2 layers were utilized to demonstrate various applications, including thermochromic displays and electrically-driven defogging windows accompanying mechanical flexibility. Comparisons of these performances confirm the superiority of the wafer-scale 2D PtTe2 layers over other nanomaterials explored for such applications.
二维(2D)过渡金属二硫属化物(TMD)层在各种新兴的电气、热学和光学应用中受到了越来越多的关注。最近开发的金属二维TMD层预计将展现出其半导体对应物所无法实现的独特属性;例如,更高的电导率和热导率以及机械柔韧性。在这项工作中,我们通过研究二维碲化铂(2D PtTe2)层此前未被探索的电热特性,将其用于非常规窗口应用,对这一相对较新的金属二维TMD类别进行了探索。我们通过在400°C的低温下对铂膜进行热辅助碲化,制备了晶圆级的涂覆有二维PtTe2层的光学透明且机械柔韧的柳树玻璃。涂覆有二维PtTe2层的窗口表现出与厚度相关的光学透明度,其电导率大于106 S m-1,高于大多数此前探索过的二维TMD。在施加电偏压时,如红外(IR)成像表征所证实的,这些窗口由于焦耳热而温度显著升高。二维PtTe2层固有的这种卓越的电热转换效率被用于展示各种应用,包括热致变色显示器和兼具机械柔韧性的电驱动除雾窗口。这些性能的比较证实了晶圆级二维PtTe2层相对于为此类应用所探索的其他纳米材料的优越性。