Fibrillar adhesives with unprecedented adhesion strength, switchability and scalability

Author:

Linghu Changhong1,Liu Yangchengyi12,Yang Xudong1,Li Dong1,Tan Yee Yuan1,Mohamed Hafiz Mohamed Haziq Bin1,Rohani Mohammad Fadhli Bin1,Du Zihao13,Su Jiangtao4,Li Yan1,Huo Yucheng1,Xu Hanyan4,Wang Xiufeng2,Wang Yifan1,Yu Jing4,Gao Huajian156,Hsia K Jimmy17

Affiliation:

1. School of Mechanical and Aerospace Engineering, Nanyang Technological University , Singapore 639798 , Singapore

2. School of Materials Science and Engineering, Xiangtan University , Xiangtan 411105 , China

3. Department of Engineering Mechanics, Zhejiang University , Hangzhou 310027 , China

4. School of Materials Science and Engineering, Nanyang Technological University , Singapore   639798 , Singapore

5. Institute of High-Performance Computing , A*STAR , Singapore   138632 , Singapore

6. Mechano-X Institute, Applied Mechanics Laboratory, Department of Engineering Mechanics, Tsinghua University , Beijing 100084 , China

7. School of Chemistry, Chemical Engineering and Biotechnology, Nanyang Technological University , Singapore 639798 , Singapore

Abstract

ABSTRACT Bio-inspired fibrillar adhesives have received worldwide attention but their potentials have been limited by a trade-off between adhesion strength and adhesion switchability, and a size scale effect that restricts the fibrils to micro/nanoscales. Here, we report a class of adhesive fibrils that achieve unprecedented adhesion strength (∼2 MPa), switchability (∼2000), and scalability (up to millimeter-scale at the single fibril level), by leveraging the rubber-to-glass (R2G) transition in shape memory polymers (SMPs). Moreover, R2G SMP fibrillar adhesive arrays exhibit a switchability of >1000 (with the aid of controlled buckling) and an adhesion efficiency of 57.8%, with apparent contact area scalable to 1000 mm2, outperforming existing fibrillar adhesives. We further demonstrate that the SMP fibrillar adhesives can be used as soft grippers and reusable superglue devices that are capable of holding and releasing heavy objects >2000 times of their own weight. These findings represent significant advances in smart fibrillar adhesives for numerous applications, especially those involving high-payload scenarios.

Funder

Ministry of Education - Singapore

China Scholarship Council

Nanyang Technological University

National Supercomputing Centre Singapore

MOE of Singapore AcRF Tier 1

Publisher

Oxford University Press (OUP)

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