A Spatially Selective Electroactive‐Actuating Adhesive Electronics for Multi‐Object Manipulation and Adaptive Haptic Interaction

Author:

Hwang Gui Won1,Jeon Seung Hwan1,Song Jin Ho1,Kim Da Wan2,Lee Jihyun1,Kim Jae‐Ik2,Jo Gwanghyun3,Park Sungjun4,Kim Hye Jin5,Kim Min‐Seok6,Yang Tae‐Heon2,Pang Changhyun17ORCID

Affiliation:

1. School of Chemical Engineering Sungkyunkwan University (SKKU) 2066 Seobu‐ro, Jangan‐gu Suwon Gyeonggi‐do 16419 Republic of Korea

2. Department of Electronic Engineering Korea National University of Transportation Chungju‐si Chungbuk 27469 Republic of Korea

3. Department of Mathematical Data Science Hanyang University ERICA 55 Hanyangdaehak‐ro, Ansan‐si Gyeonggi‐do 15588 Republic of Korea

4. Department of Electrical and Computer Engineering Ajou University Suwon Gyeonggi‐do 16499 Republic of Korea

5. Intelligent Components and Sensors Research Section Electronics and Telecommunications Research Institute (ETRI) Daejeon 34129 Republic of Korea

6. Convergence Research Group for Meta‐Touch Korea Research Institute of Standards and Science Daejeon 34113 Republic of Korea

7. Samsung Advanced Institute for Health Sciences and Technology (SAIHST) Sungkyunkwan University Suwon Gyunggi‐do 16419 Republic of Korea

Abstract

AbstractSome organisms often use adhesive setae to manipulate objects or communicate critical signals for survival through subtle surface‐transmitted vibrations, along with locomotion and long‐term adherence. Inspired by this phenomenon, the spatially selective vibration‐transmitting electronics of a multi‐pixelated electroactive‐actuating adhesive patch coupled with small adhesive architectures are presented. Here, diving beetle‐like small dense hairs possessing concave cavities are introduced to obtain high adaptability on various non‐flat surfaces in dry or wet conditions. Based on the versatile vibration‐transmitting platform, the ensuing lightweight, spatially‐selective, switchable‐adhesive device is demonstrated to effectively manipulate multiple objects simultaneously, thus overcoming the limitations of existing monotonous transportation devices. In addition, the electronics can be applied to the stretchable skin‐conforming haptic interface with high breathability and repeatable attachment capability, capable of recognizing complex outward textures of virtual objects. This skin‐adaptive haptic electronics can amplify the tiny vibrotactile feedback from the diverse surface textures of virtual creatures due to its possession of bioinspired architectures at the human–machine interface. Here, the stably encapsulated device is integrated with machine learning‐based comprehension for reproducible expression. Therefore, this technology offers promise in virtual reality and augmented reality applications.

Funder

National Research Foundation of Korea

Ministry of Trade, Industry and Energy

Ministry of Science and ICT, South Korea

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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