Programming Anisotropic Functionality of 3D Microdenticles by Staggered‐Overlapped and Multilayered Microarchitectures

Author:

Park Jeong Eun1ORCID,Je Hyeongmin2,Kim Chae Ryean3,Park Sudong4,Yu Yeonuk4,Cho Woongbi5,Won Sukyoung1,Kang Dong Jun1,Han Tae Hee1,Kwak Rhokyun6,Lee Seung Goo3,Kim Sanha2,Wie Jeong Jae78ORCID

Affiliation:

1. Department of Organic and Nano Engineering The Research Institute of Industrial Science Hanyang University Seoul 04763 Republic of Korea

2. Department of Mechanical Engineering Korea Advanced Institute of Science and Technology Daejeon 34141 Republic of Korea

3. Department of Chemistry University of Ulsan Ulsan 44610 Republic of Korea

4. Department of Mechanical Convergence Engineering Hanyang University Seoul 04763 Republic of Korea

5. Department of Organic and Nano Engineering Human‐Tech Convergence Program Hanyang University Seoul 04763 Republic of Korea

6. Department of Mechanical Convergence Engineering Institute of Nano Science and Technology Hanyang University Seoul 04763 Republic of Korea

7. Department of Organic and Nano Engineering Human‐Tech Convergence Program Department of Chemical Engineering Institute of Nano Science and Technology Hanyang University Seoul 04763 Republic of Korea

8. Department of Chemical Engineering The Michael M. Szwarc Polymer Research Institute State University of New York College of Environmental Science and Forestry Syracuse NY 13210 USA

Abstract

AbstractNatural sharkskin features staggered‐overlapped and multilayered architectures of riblet‐textured anisotropic microdenticles, exhibiting drag reduction and providing a flexible yet strong armor. However, the artificial fabrication of three‐dimensional (3D) sharkskin with these unique functionalities and mechanical integrity is a challenge using conventional techniques. In this study, it is reported on the facile microfabrication of multilayered 3D sharkskin through the magnetic actuation of polymeric composites and subsequent chemical shape fixation by casting thin polymeric films. The fabricated hydrophobic sharkskin, with geometric symmetry breaking, achieves anisotropic drag reduction in frontal and backward flow directions against the riblet‐textured microdenticles. For mechanical integrity, hard‐on‐soft multilayered mechanical properties are realized by coating the polymeric sharkskin with thin layers of zinc oxide and platinum, which have higher hardness and recovery behaviors than the polymer. This multilayered hard‐on‐soft sharkskin exhibits friction anisotropy, mechanical robustness, and structural recovery. Furthermore, coating the MXene nanosheets provides the fabricated sharkskin with a low electrical resistance of ≈5.3 Ω, which leads to high Joule heating (≈229.9 °C at 2.75 V). The proposed magnetomechanical actuation‐assisted microfabrication strategy is expected to facilitate the development of devices requiring multifunctional microtextures.

Funder

National Research Foundation

Ministry of Science and ICT, South Korea

Asian Office of Aerospace Research and Development

National Research Foundation of Korea

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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