企鹅皮肤启发,纳米颗粒增强水凝胶,用于极端环境抗压离子产生和传感

IF 19 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Siyu Zheng, Afei Liu, Xianhui Zhang, Wenhui Wu, Lihui Chen, Chunmei Lai, Yuekun Lai, Kai Liu
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引用次数: 0

摘要

大多数水凝胶严重依赖冷冻保护剂来增强其抗冻能力;然而,这种方法往往伴随着缺点,如改变网络结构和在水条件下低温保护剂泄漏的风险。鉴于这些挑战,一种具有环境弹性的二极管状水凝胶被开发出来,其双层涂层设计的灵感来自企鹅的生理特征。该设计是通过等离子体处理和浸泡在3 -氨基丙基三乙氧基硅烷/乙酸丁酯和全氟聚醚羧酸/乙酸丁酯溶液中实现的,构建了具有稳定界面强度的双层涂层。该涂层不仅提高了抗脱水性能,而且通过N,N -二甲基甲酰胺溶液提高了抗冻性能。通过精心调节涂层厚度和聚合时间,优化了水凝胶的机械和电气特性,即使在- 80°C下也能保持稳定的性能。水凝胶表现出优异的保水性,在7天的风干后,失水率仅为33.4%。此外,水凝胶在各种低温环境下表现出稳定的压电输出性能,拉伸和抗压强度分别为1156 kPa和3.45 MPa。这项研究为导电水凝胶在智能可穿戴设备中的应用提供了一种新的解决方案,强调了它们在极端环境中的应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Penguin Skin‐Inspired, Nanoparticle‐Reinforced Hydrogels for Extreme Environment‐Resistant Piezoionic Generation and Sensing
Most hydrogels rely heavily on cryoprotectants to enhance their anti‐freezing capabilities; however, this approach is often accompanied by disadvantages such as altered network structures and the risk of cryoprotectant leakage in aqueous conditions. Given these challenges, an environmentally resilient diode‐like hydrogel is developed, featuring a double‐layer coating design inspired by the physiological characteristics of penguins. This design is achieved through plasma treatment and immersion in 3‐aminopropyltriethoxysilane/butyl acetate and perfluoropolyether carboxylic acid/butyl acetate solutions, constructing a double‐layer coating with stable interfacial strength. The coating not only enhances anti‐dehydration performance but also imparts anti‐freezing properties via N,N‐dimethylformamide solution. By carefully regulating the coating thickness and polymerization duration, it has optimized the mechanical and electrical attributes of hydrogel, culminating in robust performance even at −80 °C. The hydrogel exhibits exceptional water retention capabilities, with a mere 33.4% water loss rate following 7 days of air drying. Moreover, the hydrogel demonstrates stable piezoionic output performance across various low‐temperature environments, with tensile and compressive strengths of 1156 kPa and 3.45 MPa, respectively. This study presents a novel solution for the application of conductive hydrogels in smart wearable devices, underscoring their potential for use in extreme environments.
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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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