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Centimeter-Scale Periodically Corrugated Few-Layer 2D MoS2 with Tensile Stretch-Driven Tunable Multifunctionalities.

Publication ,  Journal Article
Okogbue, E; Kim, JH; Ko, T-J; Chung, H-S; Krishnaprasad, A; Flores, JC; Nehate, S; Kaium, MG; Park, JB; Lee, S-J; Sundaram, KB; Zhai, L ...
Published in: ACS applied materials & interfaces
September 2018

Two-dimensional (2D) transition metal dichalcogenide (TMD) layers exhibit superior optical, electrical, and structural properties unattainable in any traditional materials. Many of these properties are known to be controllable via external mechanical inputs, benefiting from their extremely small thickness coupled with large in-plane strain limits. However, realization of such mechanically driven tunability often demands highly complicated engineering of 2D TMD layer structures, which is difficult to achieve on a large wafer scale in a controlled manner. Herein, we explore centimeter-scale periodically corrugated 2D TMDs, particularly 2D molybdenum disulfide (MoS2), and report their mechanically tunable multifunctionalities. We developed a water-assisted process to homogeneously integrate few layers of 2D MoS2 on three-dimensionally corrugated elastomeric substrates on a large area (>2 cm2). The evolution of electrical, optical, and structural properties in these three-dimensionally corrugated 2D MoS2 layers was systematically studied under controlled tensile stretch. We identified that they present excellent electrical conductivity and photoresponsiveness as well as systematically tunable surface wettability and optical absorbance even under significant mechanical deformation. These novel three-dimensionally structured 2D materials are believed to offer exciting opportunities for large-scale, mechanically deformable devices of various form factors and unprecedented multifunctionalities.

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Published In

ACS applied materials & interfaces

DOI

EISSN

1944-8252

ISSN

1944-8244

Publication Date

September 2018

Volume

10

Issue

36

Start / End Page

30623 / 30630

Related Subject Headings

  • Nanoscience & Nanotechnology
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
 

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Okogbue, E., Kim, J. H., Ko, T.-J., Chung, H.-S., Krishnaprasad, A., Flores, J. C., … Jung, Y. (2018). Centimeter-Scale Periodically Corrugated Few-Layer 2D MoS2 with Tensile Stretch-Driven Tunable Multifunctionalities. ACS Applied Materials & Interfaces, 10(36), 30623–30630. https://doi.org/10.1021/acsami.8b08178
Okogbue, Emmanuel, Jung Han Kim, Tae-Jun Ko, Hee-Suk Chung, Adithi Krishnaprasad, Jean Calderon Flores, Shraddha Nehate, et al. “Centimeter-Scale Periodically Corrugated Few-Layer 2D MoS2 with Tensile Stretch-Driven Tunable Multifunctionalities.ACS Applied Materials & Interfaces 10, no. 36 (September 2018): 30623–30. https://doi.org/10.1021/acsami.8b08178.
Okogbue E, Kim JH, Ko T-J, Chung H-S, Krishnaprasad A, Flores JC, et al. Centimeter-Scale Periodically Corrugated Few-Layer 2D MoS2 with Tensile Stretch-Driven Tunable Multifunctionalities. ACS applied materials & interfaces. 2018 Sep;10(36):30623–30.
Okogbue, Emmanuel, et al. “Centimeter-Scale Periodically Corrugated Few-Layer 2D MoS2 with Tensile Stretch-Driven Tunable Multifunctionalities.ACS Applied Materials & Interfaces, vol. 10, no. 36, Sept. 2018, pp. 30623–30. Epmc, doi:10.1021/acsami.8b08178.
Okogbue E, Kim JH, Ko T-J, Chung H-S, Krishnaprasad A, Flores JC, Nehate S, Kaium MG, Park JB, Lee S-J, Sundaram KB, Zhai L, Roy T, Jung Y. Centimeter-Scale Periodically Corrugated Few-Layer 2D MoS2 with Tensile Stretch-Driven Tunable Multifunctionalities. ACS applied materials & interfaces. 2018 Sep;10(36):30623–30630.
Journal cover image

Published In

ACS applied materials & interfaces

DOI

EISSN

1944-8252

ISSN

1944-8244

Publication Date

September 2018

Volume

10

Issue

36

Start / End Page

30623 / 30630

Related Subject Headings

  • Nanoscience & Nanotechnology
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences