Literature DB >> 30211427

Three dimensionally-ordered 2D MoS2 vertical layers integrated on flexible substrates with stretch-tunable functionality and improved sensing capability.

Md Ashraful Islam1, Jung Han Kim, Tae-Jun Ko, Chanwoo Noh, Shraddha Nehate, Md Golam Kaium, Minjee Ko, David Fox, Lei Zhai, Chang-Hee Cho, Kalpathy B Sundaram, Tae-Sung Bae, YounJoon Jung, Hee-Suk Chung, Yeonwoong Jung.   

Abstract

The intrinsically anisotropic crystallinity of two-dimensional (2D) transition metal dichalcogenide (2D TMD) layers enables a variety of intriguing material properties which strongly depend on the physical orientation of constituent 2D layers. For instance, 2D TMDs with vertically-aligned layers exhibit numerous dangling bonds on their 2D layer edge sites predominantly exposed on the surface, projecting significantly improved physical and/or chemical adsorption capability compared to their horizontally-oriented 2D layer counterparts. Such property advantages can be further promoted as far as the material can be integrated onto unconventional substrates of tailored geometry/functionality, offering vast opportunities for a wide range of applications which demand enhanced surface area/reactivity and mechanical flexibility. Herein, we report a new form of 2D TMDs, i.e., three-dimensionally ordered 2D molybdenum disulfide (2D MoS2) with vertically-aligned layers integrated on elastomeric substrates and explore their tunable multi-functionalities and technological promise. We grew large-scale (>2 cm2) vertically-aligned 2D MoS2 layers using a three-dimensionally patterned silicon dioxide (SiO2) template and directly transferred/integrated them onto flexible polydimethylsiloxane (PDMS) substrates by taking advantage of the distinguishable water-wettability of 2D MoS2vs. SiO2. The excellent structural integrity of the integrated vertical 2D MoS2 layers was confirmed by extensive spectroscopy/microscopy characterization. In addition, the stretch-driven unique tunability of their optical and surface properties was also examined. Moreover, we applied this material for flexible humidity sensing and identified significantly improved (>10 times) sensitivity over conventionally-designed horizontal 2D MoS2 layers, further confirming their high potential for unconventional flexible technologies.

Entities:  

Year:  2018        PMID: 30211427     DOI: 10.1039/c8nr05362f

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  3 in total

1.  Route to Cost-Effective Fabrication of Wafer-Scale Nanostructure through Self-Priming Nanoimprint.

Authors:  Yue Su; Zhaoxin Geng; Weihao Fang; Xiaoqing Lv; Shicai Wang; Zhengtai Ma; Weihua Pei
Journal:  Micromachines (Basel)       Date:  2021-01-24       Impact factor: 2.891

2.  Centimeter-scale Green Integration of Layer-by-Layer 2D TMD vdW Heterostructures on Arbitrary Substrates by Water-Assisted Layer Transfer.

Authors:  Jung Han Kim; Tae-Jun Ko; Emmanuel Okogbue; Sang Sub Han; Mashiyat Sumaiya Shawkat; Md Golam Kaium; Kyu Hwan Oh; Hee-Suk Chung; Yeonwoong Jung
Journal:  Sci Rep       Date:  2019-02-07       Impact factor: 4.379

3.  Mechanically rollable photodetectors enabled by centimetre-scale 2D MoS2 layer/TOCN composites.

Authors:  Changhyeon Yoo; Tae-Jun Ko; Sang Sub Han; Mashiyat Sumaiya Shawkat; Kyu Hwan Oh; Bo Kyoung Kim; Hee-Suk Chung; Yeonwoong Jung
Journal:  Nanoscale Adv       Date:  2021-04-06
  3 in total

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