A Skin‐Inspired High‐κ Self‐Healing Polymer for Low‐Voltage Dielectric Elastomer Actuators

J Jian‐Cheng Lai (Department of Chemical Engineering Stanford University Stanford California USA) E Eunyoung Kim C Chengyi Xu S Simiao Niu (Department of Biomedical Engineering Rutgers University Piscataway New Jersey USA) Y Yuanwen Jiang D Donglai Zhong Y Yucan Peng (Department of Materials Science and Engineering Stanford University Stanford California USA) W Weichen Wang Z Zhitao Zhang C Christopher B. Copper (Department of Chemical Engineering Stanford University Stanford California USA) H Huaxin Gong (Department of Chemical Engineering, Stanford University, 443 Via Ortega, Stanford, California 94305, United States) H Hongping Yan (Department of Chemical Engineering Stanford University Stanford California USA) Y Yangju Lin (Department of Chemical Engineering Stanford University Stanford California USA) D Deyu Liu C Chuanzhen Zhao C Can Wu Y Yuelang Chen (Department of Chemical Engineering) S Song Zhang Y Yu Zheng G Gan Chen F Fuying Dong (Department of Biomedical Engineering Rutgers University Piscataway New Jersey USA) J Jeffrey B.‐H. Tok (Department of Chemical Engineering Stanford University Stanford California USA) Z Zhenan Bao

Abstract

ABSTRACT Dielectric elastomer actuators (DEAs), known as a type of artificial muscles, are promising soft actuators with many applications including robotics and wearables due to their conformability, fast response, and large actuation. However, their usage remains constrained by high driving voltages needed to achieve substantial actuation. Here, we design a skin‐inspired high‐κ self‐healing elastomer, poly‐(acrylonitrile‐co‐butadiene)‐co‐thiourea (PABTU), that features a high dielectric constant (15 at 1 kHz), low Young's modulus (0.58 and 0.012 MPa upon pre‐stretch), and ability to form pinhole‐free thin films (∼ 3 µm). To mitigate relatively high dielectric loss of our PABTU, PABTU/PDMS‐MPU 0.3 ‐IU 0.7 bilayer structure (ULTRA) is used for actuators, increasing its breakdown strength from ∼33 to 43 V/µm. Our ULTRA actuators exhibit visible deformation at an unprecedented low voltage of 30 V and an areal strain exceeding 130% at 120 V, representing an order of magnitude reduction in voltage for actuation compared with previously reported DEAs while achieving similar actuation strain. As proof of concept, we demonstrate a low‐voltage multipixel array with ULTRA DEA. Our molecular design concept provides a path for material systems toward low‐voltage operating soft robotics.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 08, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (23)

J

Jian‐Cheng Lai

Department of Chemical Engineering Stanford University Stanford California USA

E

Eunyoung Kim

C

Chengyi Xu

S

Simiao Niu

Department of Biomedical Engineering Rutgers University Piscataway New Jersey USA

Y

Yuanwen Jiang

D

Donglai Zhong

Y

Yucan Peng

Department of Materials Science and Engineering Stanford University Stanford California USA

W

Weichen Wang

Z

Zhitao Zhang

C

Christopher B. Copper

Department of Chemical Engineering Stanford University Stanford California USA

H

Huaxin Gong

Department of Chemical Engineering, Stanford University, 443 Via Ortega, Stanford, California 94305, United States

H

Hongping Yan

Department of Chemical Engineering Stanford University Stanford California USA

Y

Yangju Lin

Department of Chemical Engineering Stanford University Stanford California USA

D

Deyu Liu

C

Chuanzhen Zhao

C

Can Wu

Y

Yuelang Chen

Department of Chemical Engineering

S

Song Zhang

Y

Yu Zheng

G

Gan Chen

F

Fuying Dong

Department of Biomedical Engineering Rutgers University Piscataway New Jersey USA

J

Jeffrey B.‐H. Tok

Department of Chemical Engineering Stanford University Stanford California USA

Z

Zhenan Bao