Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN, 47907, USA.
School of Mechanical Engineering, Purdue University, West Lafayette, IN, 47907, USA.
Biomaterials. 2025 Mar;314:122862. doi: 10.1016/j.biomaterials.2024.122862. Epub 2024 Sep 29.
Recent advancements in biomaterials have significantly impacted wearable health monitoring, creating opportunities for personalized and non-invasive health assessments. These developments address the growing demand for customized healthcare solutions. Durability is a critical factor for biomaterials in wearable applications, as they must withstand diverse wearing conditions effectively. Therefore, there is a heightened focus on developing biomaterials that maintain robust and stable functionalities, essential for advancing wearable sensing technologies. This review examines the biomaterials used in wearable sensors, specifically those interfaced with human skin and eyes, highlighting essential strategies for achieving long-lasting and stable performance. We specifically discuss three main categories of biomaterials-hydrogels, fibers, and hybrid materials-each offering distinct properties ideal for use in durable wearable health monitoring systems. Moreover, we delve into the latest advancements in biomaterial-based sensors, which hold the potential to facilitate early disease detection, preventative interventions, and tailored healthcare approaches. We also address ongoing challenges and suggest future directions for research on material-based wearable sensors to encourage continuous innovation in this dynamic field.
近年来,生物材料的进步极大地推动了可穿戴健康监测的发展,为个性化和非侵入式健康评估创造了机会。这些发展满足了人们对定制化医疗保健解决方案不断增长的需求。生物材料在可穿戴应用中,其耐用性是一个关键因素,因为它们必须有效地承受各种佩戴条件。因此,人们越来越关注开发能够保持强大和稳定功能的生物材料,这对于推动可穿戴传感技术至关重要。本综述考察了可穿戴传感器中使用的生物材料,特别是与人皮肤和眼睛接口的生物材料,强调了实现持久和稳定性能的关键策略。我们特别讨论了三种主要的生物材料——水凝胶、纤维和混合材料——它们各自具有独特的性质,非常适合用于耐用的可穿戴健康监测系统。此外,我们还探讨了基于生物材料的传感器的最新进展,这些传感器有可能促进早期疾病检测、预防性干预和定制化的医疗保健方法。我们还讨论了基于材料的可穿戴传感器面临的持续挑战,并提出了未来的研究方向,以鼓励这一充满活力的领域不断创新。