Biomass-Derived Conductive Hydrogel-Based Electronic-Skin Patch for Integrated Wearable Bioelectronics and Real-Time Wound-Status Monitoring and Treatment

可穿戴计算机 生物电子学 生物相容性 纳米技术 导电体 羧甲基纤维素 自愈水凝胶 可穿戴技术 生物医学工程 蓝牙 数码产品 导电的 伤口愈合 化学 织物 材料科学 无线 光热治疗 壳聚糖 计算机科学 持续监测 结构健康监测 生物传感器 自愈 伤口敷料 医疗器械 炎症反应 纳米传感器 伤口护理 生物相容性材料 刮擦
作者
Xugang Dang,Boyan Guo,Xuechuan Wang
出处
期刊:Analytical Chemistry [American Chemical Society]
卷期号:98 (10): 7561-7579 被引量:1
标识
DOI:10.1021/acs.analchem.5c06888
摘要

Conductive hydrogel-based electronic-skin (e-skin) patches represent an emerging category of smart wound dressings, facilitating innovative approaches to chronic wound repair and real-time monitoring. Despite their advantages in biocompatibility and exudate management, current hydrogel patches frequently suffer from limitations─including single functionality, inadequate real-time monitoring capabilities, and poor adaptability to diverse wound types. Herein, we present a multifunctional biomass-derived conductive hydrogel e-skin patch. It is fabricated via supramolecular assembly of carboxymethyl cellulose (CMC), carboxymethyl chitosan (CMCS), and poly(vinyl alcohol) (PVA). The resulting network, strengthened by hydrogen bonding, π-π interactions, and covalent cross-linking, is mechanically robust, conductive, and intelligently responsive. The e-skin patch exhibited outstanding mechanical properties, fatigue resistance, swelling capacity, electrical conductivity, biocompatibility, antibacterial performance, and photothermal conversion capability. Beyond this, it proved remarkably effective in accelerating the healing of full-thickness skin defects while strongly suppressing inflammation─achieving an exceptional 98% healing rate within 14 days. Notably, the e-skin patch sensor demonstrated remarkable real-time monitoring capabilities for real-time monitoring of wound changes, encompassing micromovement detection, tracking of inflammatory temperature elevation, and continuous acquisition of physiological signals. Furthermore, an innovative portable wireless wearable system was proposed by integrating the e-skin patch sensor with a miniaturized electronic chip. The platform enabled continuous real-time monitoring of wound dynamics, with data transmitted via Bluetooth technology to multiple terminal devices including computers, smartphones, and iPads. A fully integrated "sensing-acquisition-transmission-terminal" medical diagnostic and therapeutic system was established, presenting a novel sensing solution with significant potential for precision wound management and intelligent healthcare applications.
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