Department of Mechanical Engineering, The University of Hong Kong, Hong Kong SAR, 999077, China.
State Key Laboratory of Digital Manufacturing Equipment and Technology, Huazhong University of Science and Technology, Wuhan, 430074, China.
Adv Mater. 2021 Jan;33(3):e2004425. doi: 10.1002/adma.202004425. Epub 2020 Dec 6.
Recent developments in soft functional materials have created opportunities for building bioelectronic devices with tissue-like mechanical properties. Their integration with the human body could enable advanced sensing and stimulation for medical diagnosis and therapies. However, most of the available soft electronics are constructed as planar sheets, which are difficult to interface with the target organs and tissues that have complex 3D structures. Here, the recent approaches are highlighted to building 3D interfaces between soft electronic tools and complex biological organs and tissues. Examples involve mesh devices for conformal contact, imaging-guided fabrication of organ-specific electronics, miniaturized probes for neurointerfaces, instrumented scaffold for tissue engineering, and many other soft 3D systems. They represent diverse routes for reconciling the interfacial mismatches between electronic tools and biological tissues. The remaining challenges include device scaling to approach the complexity of target organs, biological data acquisition and processing, 3D manufacturing techniques, etc., providing a range of opportunities for scientific research and technological innovation.
软功能材料的最新进展为构建具有类似组织机械性能的生物电子设备创造了机会。它们与人体的集成可以实现先进的传感和刺激,用于医疗诊断和治疗。然而,大多数现有的软电子产品都是作为平面片构建的,这使得它们难以与具有复杂 3D 结构的目标器官和组织相连接。本文重点介绍了在软电子工具和复杂生物器官和组织之间构建 3D 接口的最新方法。这些方法包括用于贴合接触的网状器件、针对特定器官的电子设备的成像引导制造、用于神经接口的微型探头、用于组织工程的仪器化支架以及许多其他软 3D 系统。它们代表了多种调和电子工具和生物组织之间界面不匹配的途径。剩余的挑战包括将设备扩展以适应目标器官的复杂性、生物数据的获取和处理、3D 制造技术等,为科学研究和技术创新提供了广泛的机会。