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二维原子级薄固体在水上的力学特性

Two-Dimensional Mechanics of Atomically Thin Solids on Water.

作者信息

Yu Jaehyung, Liang Ce, Lee Myungjae, Das Soumik, Ye Andrew, Mujid Fauzia, Poddar Preeti K, Cheng Baorui, Abbott Nicholas L, Park Jiwoong

机构信息

Department of Chemistry, University of Chicago, Chicago, Illinois 60637, United States.

Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois 60637, United States.

出版信息

Nano Lett. 2022 Sep 14;22(17):7180-7186. doi: 10.1021/acs.nanolett.2c02499. Epub 2022 Sep 1.

Abstract

Movement of a three-dimensional solid at an air-water interface is strongly influenced by the extrinsic interactions between the solid and the water. The finite thickness and volume of a moving solid causes capillary interactions and water-induced drag. In this Letter, we report the fabrication and dynamical imaging of freely floating MoS solids on water, which minimizes such extrinsic effects. For this, we delaminate a synthesized wafer-scale monolayer MoS onto a water surface, which shows negligible height difference across water and MoS Subsequently patterning by a laser generates arbitrarily shaped MoS with negligible in-plane strain. We introduce photoswitchable surfactants to exert a lateral force to floating MoS with a spatiotemporal control. Using this platform, we demonstrate a variety of two-dimensional mechanical systems that show reversible shape changes. Our experiment provides a versatile approach for designing and controlling a large array of atomically thin solids on water for intrinsically two-dimensional dynamics and mechanics.

摘要

三维固体在空气-水界面的运动受到固体与水之间外在相互作用的强烈影响。运动固体的有限厚度和体积会导致毛细相互作用和水致阻力。在本信函中,我们报告了在水上自由漂浮的二硫化钼(MoS)固体的制备及动态成像,这将此类外在效应降至最低。为此,我们将合成的晶圆级单层二硫化钼分层到水面上,其在水和二硫化钼之间显示出可忽略不计的高度差。随后通过激光进行图案化处理,可生成面内应变可忽略不计的任意形状的二硫化钼。我们引入可光开关的表面活性剂,以通过时空控制对漂浮的二硫化钼施加侧向力。利用该平台,我们展示了各种呈现可逆形状变化的二维机械系统。我们的实验为设计和控制大量在水上的原子级薄固体以实现本征二维动力学和力学提供了一种通用方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc2e/9479134/95b165657ed8/nl2c02499_0001.jpg

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