School of Biomedical Engineering, Anhui Medical University, Hefei 230032, China.
Department of Rehabilitation Medicine, The Second Affiliated Hospital of Anhui Medical University, Hefei Anhui, 230601, China.
Acta Biomater. 2024 Oct 1;187:183-198. doi: 10.1016/j.actbio.2024.08.048. Epub 2024 Sep 1.
Skin-electronic interfaces have broad applications in fields such as diagnostics, therapy, health monitoring, and smart wearables. However, they face various challenges in practical use. For instance, in wet environments, the cohesion of the material may be compromised, and under dynamic conditions, maintaining conformal adhesion becomes difficult, leading to reduced sensitivity and fidelity of electrical signal transmission. The key scientific issue lies in forming a stable and tight mechanical-electronic coupling at the tissue-electronic interface. Here, inspired by octopus sucker structures and snail mucus, we propose a strategy for hydrogel skin-electronic interfaces based on multi-coupled bioinspired adhesion and introduce an ultrasound (US)-mediated interfacial toughness enhancement mechanism. Ultimately, using digital light processing micro-nano additive manufacturing technology (DLP 3D), we have developed a multifunctional, diagnostic-therapeutic integrated patch (PAMS). This patch exhibits moderate water swelling properties, a maximum deformation of up to 460%, high sensitivity (GF = 4.73), and tough and controllable bioadhesion (shear strength increased by 109.29%). Apart from outstanding mechanical and electronic properties, the patch also demonstrates good biocompatibility, anti-bacterial properties, photothermal properties, and resistance to freezing at -20 °C. Experimental results show that this skin-electronic interface can sensitively monitor temperature, motion, and electrocardiogram signals. Utilizing a rat frostbite model, we have demonstrated that this skin-electronic interface can effectively accelerate the wound healing process as a wound patch. This research offers a promising strategy for improving the performance of bioelectronic devices, sensor-based educational reforms and personalized diagnostics and therapeutics in the future. STATEMENT OF SIGNIFICANCE: Establishing stable and tight mechanical-electronic coupling at the tissue-electronic interface is essential for the diverse applications of bioelectronic devices. This study aims to develop a multifunctional, diagnostic-therapeutic integrated hydrogel skin-electronic interface patch with enhanced interfacial toughness. The patch is based on a multi-coupled bioinspired adhesive-enhanced mechanism, allowing for personalized 3D printing customization. It can be used as a high-performance diagnostic-therapeutic sensor and effectively promote frostbite wound healing. We anticipate that this research will provide new insights for constructing the next generation of multifunctional integrated high-performance bioelectronic interfaces.
皮肤电子接口在诊断、治疗、健康监测和智能可穿戴设备等领域有广泛的应用。然而,它们在实际应用中面临着各种挑战。例如,在潮湿环境中,材料的内聚性可能会受到影响,在动态条件下,保持贴合的附着力变得困难,导致电信号传输的灵敏度和保真度降低。关键的科学问题在于在组织-电子界面形成稳定且紧密的机电耦合。在这里,受章鱼吸盘结构和蜗牛粘液的启发,我们提出了一种基于多耦合仿生粘附的水凝胶皮肤电子接口策略,并引入了一种超声(US)介导的界面韧性增强机制。最终,我们使用数字光处理微纳米增材制造技术(DLP 3D),开发了一种多功能、诊断-治疗一体化贴片(PAMS)。该贴片具有适度的水膨胀特性,最大变形可达 460%,高灵敏度(GF = 4.73),坚韧且可控的生物粘附(剪切强度提高了 109.29%)。除了出色的机械和电子性能外,该贴片还表现出良好的生物相容性、抗菌性能、光热性能和在-20°C 下的抗冻性能。实验结果表明,这种皮肤电子接口可以灵敏地监测温度、运动和心电图信号。利用大鼠冻伤模型,我们证明了这种皮肤电子接口可以作为伤口贴片有效地加速伤口愈合过程。这项研究为改善生物电子设备的性能、基于传感器的教育改革和个性化诊断与治疗提供了一种有前途的策略。