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用于多模态人体运动信号监测及自供电摩擦纳米发电机构建的碳量子点功能化真皮衍生透明电子皮肤

Carbon Quantum Dot-Functionalized Dermis-Derived Transparent Electronic Skin for Multimodal Human Motion Signal Monitoring and Construction of Self-Powered Triboelectric Nanogenerator.

作者信息

Shen Jialu, Yang Yao, Zhang Jinwei, Lin Wei, Gu Haibin

机构信息

Key Laboratory of Leather Chemistry and Engineering of Ministry of Education, Sichuan University, Chengdu 610065, China.

National Engineering Laboratory for Clean Technology of Leather Manufacture, Sichuan University, Chengdu 610065, China.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 4;16(35):46771-46788. doi: 10.1021/acsami.4c09618. Epub 2024 Aug 21.

Abstract

Electronic skin (e-skin) is considered as a highly promising interface for human-computer interaction systems and wearable electronic devices. Through elaborate design and assembly of various materials, it possesses multiple characteristics similar to human skin, including remarkable flexibility, stretchability, sensitivity to temperature and humidity, biocompatibility, and efficient interfacial ion/electron transport capabilities. Here, we innovatively integrate multifunctional carbon quantum dots (CQDs), which exhibit conductivity, antibacterial properties, ultraviolet absorption, and fluorescence emission, with poly(acrylic acid) and glycerin (Gly) into a three-dimensional network structure of natural goatskin collagen fibers. Through a top-down design strategy enhanced by hydrogen bond reconstruction, we successfully fabricated a novel transparent e-skin (PAC-eSkin). This e-skin exhibited significant tensile properties (4.94 MPa of tensile strength and 263.42% of a maximum breaking elongation), while also possessing Young's modulus similar to human skin (2.32 MPa). It is noteworthy that the functionalized CQDs used was derived from discarded goat hair, and the addition of Gly gave PAC-eSkin excellent antifreezing and moisturizing properties. Due to the presence of ultrasmall CQDs, which creates efficient ion/electron transport channels within PAC-eSkin, it could rapidly sense human motion and physiological signals (with a gauge factor (GF) of 1.88). Furthermore, PAC-eSkin had the potential to replace traditional electrode patches for real-time monitoring of electrocardiogram, electromyogram, and electrooculogram signals, with a higher SNR (signal-to-noise ratio) of 25.1 dB. Additionally, the customizable size and shape of PAC-eSkin offer vast possibilities for the construction of single-electrode triboelectric nanogenerator systems. We have reason to believe that the design and development of this transparent e-skin based on CQDs-functionalized dermal collagen matrices can pave a new way for innovations in human-computer interaction interfaces and their sensing application in diverse scenarios.

摘要

电子皮肤(e-skin)被认为是人机交互系统和可穿戴电子设备中极具前景的接口。通过精心设计和组装各种材料,它具备多种类似于人类皮肤的特性,包括出色的柔韧性、拉伸性、对温度和湿度的敏感性、生物相容性以及高效的界面离子/电子传输能力。在此,我们创新性地将具有导电性、抗菌性能、紫外线吸收和荧光发射特性的多功能碳量子点(CQDs)与聚丙烯酸和甘油(Gly)整合到天然山羊皮胶原纤维的三维网络结构中。通过氢键重构增强的自上而下设计策略,我们成功制备了一种新型透明电子皮肤(PAC-eSkin)。这种电子皮肤展现出显著的拉伸性能(拉伸强度为4.94 MPa,最大断裂伸长率为263.42%),同时还拥有与人类皮肤相似的杨氏模量(2.32 MPa)。值得注意的是,所使用的功能化CQDs源自废弃的山羊毛发,并且Gly的添加赋予了PAC-eSkin优异的抗冻和保湿性能。由于超小CQDs的存在,在PAC-eSkin内创建了高效的离子/电子传输通道,它能够快速感知人体运动和生理信号(应变片系数(GF)为1.88)。此外,PAC-eSkin有潜力替代传统电极贴片用于实时监测心电图、肌电图和眼电图信号,具有更高的25.1 dB的信噪比(SNR)。此外,PAC-eSkin可定制的尺寸和形状为单电极摩擦纳米发电机系统的构建提供了广阔的可能性。我们有理由相信这种基于CQDs功能化真皮胶原基质的透明电子皮肤的设计和开发能够为人机交互界面的创新及其在各种场景中的传感应用开辟一条新途径。

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