Han Xu, Lin Xinjing, Sun Yifei, Huang Lingling, Huo Fengwei, Xie Ruijie
Institute of Flexible Electronics (IFE, Future Technologies), Xiang'an Campus, Xiamen University, Xiang'an South Road, Xiamen 361102, Fujian, P. R. China.
Department of Obstetrics, Women and Children's Hospital, School of Medicine, Xiamen University, 10 Zhenhai Road, Xiamen 361102, Fujian, P. R. China.
ACS Appl Mater Interfaces. 2024 Oct 2. doi: 10.1021/acsami.4c11976.
Flexible electronics can seamlessly adhere to human skin or internal tissues, enabling the collection of physiological data and real-time vital sign monitoring in home settings, which give it the potential to revolutionize chronic disease management and mitigate mortality rates associated with sudden illnesses, thereby transforming current medical practices. However, the development of flexible electronic devices still faces several challenges, including issues pertaining to material selection, limited functionality, and performance instability. Among these challenges, the choice of appropriate materials, as well as their methods for film formation and patterning, lays the groundwork for versatile device development. Establishing stable interfaces, both internally within the device and in human-machine interactions, is essential for ensuring efficient, accurate, and long-term monitoring in health electronics. This review aims to provide an overview of critical fabrication steps and interface optimization strategies in the realm of flexible health electronics. Specifically, we discuss common thin film processing methods, patterning techniques for functional layers, interface challenges, and potential adjustment strategies. The objective is to synthesize recent advancements and serve as a reference for the development of innovative flexible health monitoring devices.
柔性电子器件能够无缝贴合人体皮肤或内部组织,实现家庭环境下生理数据的采集和生命体征的实时监测,这使其有潜力变革慢性病管理并降低突发疾病的死亡率,从而改变当前的医疗实践。然而,柔性电子器件的发展仍面临若干挑战,包括材料选择、功能有限和性能不稳定等问题。在这些挑战中,合适材料的选择及其成膜和图案化方法,为多功能器件的开发奠定了基础。在器件内部以及人机交互中建立稳定的界面,对于确保健康电子器件进行高效、准确和长期的监测至关重要。本综述旨在概述柔性健康电子领域的关键制造步骤和界面优化策略。具体而言,我们讨论了常见的薄膜加工方法、功能层的图案化技术、界面挑战以及潜在的调整策略。目的是综合近期的进展,为创新型柔性健康监测设备的开发提供参考。