Soft Electronic Materials with Combinatorial Properties Generated via Mussel-Inspired Chemistry and Halloysite Nanotube Reinforcement

埃洛石 纳米管 材料科学 纳米技术 软机器人 数码产品 自愈水凝胶 碳纳米管 计算机科学 复合材料 电气工程 执行机构 高分子化学 工程类 人工智能
作者
Małgorzata Karolina Pierchała,Firoz Babu Kadumudi,Mehdi Mehrali,Tiberiu‐Gabriel Zsurzsan,Paul J. Kempen,Marcin P. Serdeczny,Jon Spangenberg,Thomas L. Andresen,Alireza Dolatshahi‐Pirouz
出处
期刊:ACS Nano [American Chemical Society]
卷期号:15 (6): 9531-9549 被引量:62
标识
DOI:10.1021/acsnano.0c09204
摘要

Soft and electrically active materials are currently being utilized for intelligent systems, including electronic skin, cybernetics, soft robotics, and wearable devices. However, fabricating materials that fulfill the complex requirements of such advanced applications remains a challenge. These attributes include electronic, adhesive, self-healing, flexible, moldable, printable, and strong mechanical properties. Inspired by the recent interest in transforming monofunctional materials into multifunctional ones through nanoreinforcement and mussel-inspired chemistry, we have designed a simple two-step methodology based on halloysite nanotube (HNT) and polydopamine (PDA) to address the grand challenges in the field. In brief, HNTs were coated with PDA and embedded within a poly(vinyl alcohol) (PVA)-based polymeric matrix in combination with ferric ions (Fe3+). The final composite displayed a 3-fold increase in electrical conductivity, a 20-fold increase in mechanical stiffness, and a 7-fold increase in energy dissipation in comparison to their nonfunctional counterparts, which arose from a combination of nanotube alignment and mussel-inspired chemistry. Moreover, the developed composite could elongate up to 30000% of its original length, maintain its electrical properties after 600% strain, self-heal within seconds (both electrically and mechanically), and display strain-sensitivity. Finally, it was 3D-printable and thus amenable for engineering of customized wearable electronics.
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