用于医疗保健的生物基智能可穿戴传感器的最新进展

Seyedeh Nooshin Banitaba , Sanaz Khademolqorani , Vijaykumar V. Jadhav , Elham Chamanehpour , Yogendra Kumar Mishra , Ebrahim Mostafavi , Ajeet Kaushik
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引用次数: 2

摘要

作为个人便携式设备,可穿戴传感器通过激活生物、物理和化学传感能力,为诊断各种疾病提供了一条前沿途径。这通常可以通过连续实时记录患者的生理状态以及病理生理信息来实现。尽管可穿戴传感器技术还处于起步阶段,但人们对柔性聚合物传感器进行了大量尝试。在适用于合成柔性和可穿戴传感器的各种候选聚合物中,生物基聚合物由于其生物相容性、生物降解性、环保特性和成本效益而引起了人们的更多兴趣。此外,一些制造技术被认为可以构建有效的框架,如薄膜、水凝胶、气凝胶、铁凝胶、3D层、电纺垫和纺织品。在这篇综述中,概述了用于设计可穿戴传感器的不同机制。然后,关于观察到的生物基聚合物的优点,描述了对基于天然的可穿戴传感器的制造的重点研究。值得注意的是,纤维素、壳聚糖、丝、明胶和藻酸盐在传感功能中的作用得到了强调。因此,这篇综述为基于天然聚合物的可穿戴传感器开辟了一扇新的机遇之窗。希望新一代传感器将结合使用可持续和绿色元素以及小型化传感器结构所取得的新成果推出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent progress of bio-based smart wearable sensors for healthcare applications

Recent progress of bio-based smart wearable sensors for healthcare applications

As personal portable devices, wearable sensors supply a leading-edge pathway to diagnose various diseases through actuating biological, physical, and chemical sensing capabilities. This could be commonly carried out via recording continuous and real-time of the patient's physiological statuses, as well as pathophysiological information. Although wearable sensor technology is in the infancy stage, tremendous attempts have been devoted to approaching flexible polymeric sensors. Among various polymer candidates applicable for synthesizing flexible and wearable sensors, the bio-based ones have piqued more interest due to their biocompatibility, biodegradability, eco-friendly features, and cost-effectiveness. Additionally, several fabrication techniques have been professed to architect efficient frameworks, such as films, hydrogels, aerogels, ferrogels, 3D layers, electrospun mats, and textiles. In this review, different mechanisms declared to engineer wearable sensors are overviewed. Then, regarding the advantages observed for bio-based polymers, the focused studies on the fabrication of natural-based wearable sensors are described. Notably, cellulose, chitosan, silk, gelatin, and alginate's role in sensing functionality is highlighted. Accordingly, this review has opened a new window to ahead opportunities for wearable sensors based on natural polymers. It is hoped that the new generation of sensors will be launched by combining emerging achievements obtained from employing sustainable and green elements and miniaturized sensor structures.

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