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用于可生物降解电子皮肤和脉搏波测量的酶交联丝素蛋白水凝胶。

Enzymatic Crosslinked Silk Fibroin Hydrogel for Biodegradable Electronic Skin and Pulse Waveform Measurements.

机构信息

Hubei Provincial Key Laboratory of Green Materials for Light Industry, Hubei University of Technology, Wuhan 430068, China.

Department of Chemistry, Maharshi Dayanand University, Mumbai 400012, India.

出版信息

Biomacromolecules. 2022 Aug 8;23(8):3429-3438. doi: 10.1021/acs.biomac.2c00553. Epub 2022 Jul 13.

DOI:10.1021/acs.biomac.2c00553
PMID:35822308
Abstract

The development of a portable, controllable, and environmentally friendly electronic skin (e-skin) is highly desirable; however, it presents a major challenge. Herein, a biocompatible, biodegradable, and easily usable hydrogel was designed and fabricated as e-skin to enable the transmission of information regarding the spatial pressure distribution. Silk fibroin (SF) was used as the hydrogel skeleton, which endowed the hydrogel with intelligent mechanical sensitivity. During its conditioning in weakly acidic media, the density of the enzymatic crosslink increased and a dense network was formed due to the formation of covalent/hydrogen bonds. Additionally, a conductive SF/polyvinyl alcohol (PVA) hybrid film was molded as a flexible electrode after graphite deposition. The above SF sensing unit based on SF hydrogels and SF/PVA hybrid films showed high strain sensitivity (4.78), fast responsiveness (<0.1 s), good cycling stability (≥10,000), excellent biocompatibility, and biodegradability. Importantly, a coplanar 8 × 8 pixel SF-based e-skin array was successfully fabricated and applied for 3D signal transmission of the object. The SF-based e-skin was capable of precisely tracking the changes in the pulse pressure, the movement of the finger joint, and the vibrations of the vocal cord. Therefore, the current findings provide a solid foundation for future studies exploring the next generation of electronic devices.

摘要

开发一种便携式、可控且环保的电子皮肤(e-skin)是非常理想的;然而,这是一个重大的挑战。在此,设计并制备了一种具有生物相容性、可生物降解和易于使用的水凝胶作为 e-skin,以实现对空间压力分布信息的传输。丝素蛋白(SF)被用作水凝胶骨架,使水凝胶具有智能机械敏感性。在弱酸性介质中调节时,由于形成共价/氢键,酶交联的密度增加并且形成致密网络。此外,在沉积石墨后,将导电 SF/聚乙烯醇(PVA)杂化膜模制成柔性电极。基于 SF 水凝胶和 SF/PVA 杂化膜的上述 SF 传感单元表现出高应变灵敏度(4.78)、快速响应性(<0.1 s)、良好的循环稳定性(≥10,000)、优异的生物相容性和可生物降解性。重要的是,成功地制造了一个共面的 8×8 像素 SF 基 e-skin 阵列,并将其应用于物体的 3D 信号传输。SF 基 e-skin 能够精确跟踪脉搏压力变化、手指关节运动和声带振动。因此,当前的研究结果为探索下一代电子设备的未来研究提供了坚实的基础。

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