Wearable biosensors for health monitoring: advances in graphene-based technologies.

IF 8 2区 材料科学 Q1 CHEMISTRY, PHYSICAL
Mohamed A Abdelfattah, Sina S Jamali, Navid Kashaninejad, Nam-Trung Nguyen
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引用次数: 0

Abstract

The human body is an intelligent system, continuously generating signals that correlate with specific vital activities and indicate the state of our health and fitness. Therefore, accurate and real-time tracking of these signals is important for monitoring our health and timely medical interventions. The quantification of these signals in real-time is made possible by using skin wearable devices that detect disease-related biomarkers in bodily fluids, such as sweat and interstitial fluid. Integrating nanomaterials, particularly graphene, into wearable devices has dramatically enhanced the performance of wearable biosensors. The exemplary electrical properties, mechanical flexibility, and biocompatibility of graphene have made it a revolutionary material to shape the future of wearable devices. Graphene is versatile because its surface chemistry can be easily tuned to accommodate different biorecognition elements. This review provides an overview of flexible wearable biosensing devices, their sampling methods, and how microfluidic approaches enhance their performance. The paper also discusses the different strategies for the synthesis of graphene nanostructures, their integration into wearable systems, and their ability to improve sensing performance. Various surface chemistry modification techniques are also explored for the enhancement of the immobilisation of biomolecules. Finally, the paper discusses the challenges of graphene-based wearable technologies and their roles in continuous health monitoring and personalised medicine.

用于健康监测的可穿戴生物传感器:石墨烯技术的进展。
人体是一个智能系统,不断产生与特定重要活动相关的信号,表明我们的健康和健身状态。因此,准确和实时地跟踪这些信号对于监测我们的健康和及时的医疗干预非常重要。通过使用皮肤可穿戴设备检测体液(如汗液和间质液)中与疾病相关的生物标志物,可以实时量化这些信号。将纳米材料,特别是石墨烯,集成到可穿戴设备中,大大提高了可穿戴生物传感器的性能。石墨烯的典型电学性能、机械灵活性和生物相容性使其成为塑造可穿戴设备未来的革命性材料。石墨烯是多功能的,因为它的表面化学可以很容易地调整以适应不同的生物识别元素。这篇综述提供了柔性可穿戴生物传感设备的概述,他们的采样方法,以及微流体方法如何提高他们的性能。本文还讨论了合成石墨烯纳米结构的不同策略,将其集成到可穿戴系统中,以及提高传感性能的能力。各种表面化学修饰技术也被探索以增强生物分子的固定化。最后,本文讨论了基于石墨烯的可穿戴技术的挑战及其在持续健康监测和个性化医疗中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nanoscale Horizons
Nanoscale Horizons Materials Science-General Materials Science
CiteScore
16.30
自引率
1.00%
发文量
141
期刊介绍: Nanoscale Horizons stands out as a premier journal for publishing exceptionally high-quality and innovative nanoscience and nanotechnology. The emphasis lies on original research that introduces a new concept or a novel perspective (a conceptual advance), prioritizing this over reporting technological improvements. Nevertheless, outstanding articles showcasing truly groundbreaking developments, including record-breaking performance, may also find a place in the journal. Published work must be of substantial general interest to our broad and diverse readership across the nanoscience and nanotechnology community.
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