TY - JOUR
T1 - Vinyl Acetate-Enhanced Polyvinyl Chloride Gel with High Electroadhesion and Self-Heating-Tunability for Soft Robots in Freezing Environments
AU - Wei, Chang
AU - Zhang, Junshi
AU - Liu, Lei
AU - Yan, Han
AU - Wang, Kaijun
AU - He, Yuzheng
AU - Cui, Minchao
AU - Zhu, Zicai
AU - Zhu, Jihong
AU - Zhang, Weihong
AU - Wang, Zuankai
AU - Lu, Jian
N1 - Publisher Copyright:
© 2025 The Author(s). Advanced Science published by Wiley-VCH GmbH.
PY - 2025/11/6
Y1 - 2025/11/6
N2 - Polyvinyl chloride gel (PVCg) exhibits versatile electromechanical properties, making it highly promising for soft robots. However, conventional PVCg with excessive plasticizers generates a significant amount of heat and suffers from premature electrical breakdown during electro-induced actuation, seriously limiting its widespread application. Here, a novel strategy is demonstrated to simultaneously regulate the heat generation and improve the electromechanical properties of PVCg by introducing polyvinyl chloride-co-vinyl acetate (PVCVA) to fabricate PVCVA gel (PVCVAg). Notably, the proposed PVCVAg exhibits over 50% reduction in heat generation, 15-fold extended lifespan (from 200 s to over 3000 s), and 2.15 times higher electro-adhesion force (from 13.8 to 29.6 kPa) compared to the state-of-the-art PVCg. Based on the improved electroactive properties of PVCVAg, electro-actuation, adhesion, and tunable heating are integrated into a soft robot to achieve fast crawling, module self-reconfiguration within millimeter dimensions via electroadhesive connections, and on-demand environmental thermal interaction without requiring auxiliary heaters. Moreover, these capabilities are validated through various tests, including self-reconfiguration in maze-like confined spaces, operation at −50 °C, and collaborative aero-engine blisk inspection and ice melting in freezing environments. These demonstrations highlight the application potential of the integrated multifunctional PVCVAg devices in complex and extreme environments.
AB - Polyvinyl chloride gel (PVCg) exhibits versatile electromechanical properties, making it highly promising for soft robots. However, conventional PVCg with excessive plasticizers generates a significant amount of heat and suffers from premature electrical breakdown during electro-induced actuation, seriously limiting its widespread application. Here, a novel strategy is demonstrated to simultaneously regulate the heat generation and improve the electromechanical properties of PVCg by introducing polyvinyl chloride-co-vinyl acetate (PVCVA) to fabricate PVCVA gel (PVCVAg). Notably, the proposed PVCVAg exhibits over 50% reduction in heat generation, 15-fold extended lifespan (from 200 s to over 3000 s), and 2.15 times higher electro-adhesion force (from 13.8 to 29.6 kPa) compared to the state-of-the-art PVCg. Based on the improved electroactive properties of PVCVAg, electro-actuation, adhesion, and tunable heating are integrated into a soft robot to achieve fast crawling, module self-reconfiguration within millimeter dimensions via electroadhesive connections, and on-demand environmental thermal interaction without requiring auxiliary heaters. Moreover, these capabilities are validated through various tests, including self-reconfiguration in maze-like confined spaces, operation at −50 °C, and collaborative aero-engine blisk inspection and ice melting in freezing environments. These demonstrations highlight the application potential of the integrated multifunctional PVCVAg devices in complex and extreme environments.
KW - electro-adhesion
KW - electroactive polymers
KW - freezing environments
KW - self-heating
KW - self-reconfiguration
KW - soft robots
UR - https://www.scopus.com/pages/publications/105012991119
U2 - 10.1002/advs.202507757
DO - 10.1002/advs.202507757
M3 - 文章
AN - SCOPUS:105012991119
SN - 2198-3844
VL - 12
JO - Advanced Science
JF - Advanced Science
IS - 41
M1 - e07757
ER -