Revolutionizing human healthcare with wearable sensors for monitoring human strain.

IF 5.4 2区 医学 Q1 BIOPHYSICS Colloids and Surfaces B: Biointerfaces Pub Date : 2024-11-17 DOI:10.1016/j.colsurfb.2024.114384
Shweta J Malode, Mohammed Ali Alshehri, Nagaraj P Shetti
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Abstract

With the rapid advancements in wearable sensor technology, healthcare is witnessing a transformative shift towards personalized and continuous monitoring. Wearable sensors designed for tracking human strain offer promising applications in rehabilitation, athletic performance, occupational health, and early disease detection. Recent advancements in the field have centered on the design optimization and miniaturization of wearable biosensors. Wireless communication technologies have facilitated the simultaneous, non-invasive detection of multiple analytes with high sensitivity and selectivity through wearable biosensors, significantly enhancing diagnostic accuracy. This review meticulously chronicles noteworthy advancements in wearable sensors tailored for healthcare and biomedical applications, spanning the current market landscape, challenges faced, and prospective trends, including multifunctional smart wearable sensors and integrated decision-support systems. The domain of flexible electronics has witnessed substantial progress over the past decade, particularly in flexible strain sensors, which are crucial for contemporary wearable and implantable devices. These innovations have broadened the scope of applications in human health monitoring and diagnostics. Continuous advancements in novel materials and device architectural methodologies aim to expand the utility of these sensors while meeting the increasingly stringent demands for enhanced sensing performance. This review explores the diverse array of wearable sensors-from piezoelectric, piezoresistive, and capacitive sensors to advanced optical and bioimpedance sensors-each distinguished by unique material properties and functionalities. We analyzed these technologies' sensitivity, accuracy, and response time, which were crucial for reliably capturing strain metrics in dynamic, real-world conditions. Quantitative performance comparisons across various sensor types highlighted their relative effectiveness, strengths, and limitations regarding detection precision, durability, and user comfort. Additionally, we discussed the current challenges in wearable sensor design, including energy efficiency, data transmission, and integration with machine learning models for enhanced data interpretation. Ultimately, this review emphasized the revolutionary potential of wearable strain sensors in advancing preventative healthcare and enabling proactive health management, ushering in an era where real-time health insights could lead to more timely interventions and improved health outcomes.

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利用可穿戴传感器监测人体应变,彻底改变人类医疗保健。
随着可穿戴传感器技术的飞速发展,医疗保健正朝着个性化和持续监测的方向转变。专为跟踪人体应变而设计的可穿戴传感器在康复、运动表现、职业健康和早期疾病检测方面具有广阔的应用前景。该领域的最新进展主要集中在可穿戴生物传感器的设计优化和微型化方面。无线通信技术促进了可穿戴生物传感器以高灵敏度和高选择性同时对多种分析物进行无创检测,大大提高了诊断的准确性。本综述详细记录了为医疗保健和生物医学应用量身定制的可穿戴传感器领域值得关注的进展,涵盖当前的市场格局、面临的挑战和未来趋势,包括多功能智能可穿戴传感器和集成决策支持系统。过去十年间,柔性电子领域取得了长足的进步,尤其是在柔性应变传感器方面,这对当代可穿戴和植入式设备至关重要。这些创新拓宽了人体健康监测和诊断的应用范围。新型材料和设备结构方法的不断进步旨在扩大这些传感器的用途,同时满足对增强传感性能日益严格的要求。本综述探讨了各种可穿戴传感器--从压电、压阻和电容传感器到先进的光学和生物阻抗传感器--每种传感器都具有独特的材料特性和功能。我们分析了这些技术的灵敏度、准确性和响应时间,这对于在真实世界的动态条件下可靠地捕捉应变指标至关重要。对各种类型传感器的性能进行量化比较,突出了它们在检测精度、耐用性和用户舒适度方面的相对有效性、优势和局限性。此外,我们还讨论了当前可穿戴传感器设计所面临的挑战,包括能效、数据传输以及与机器学习模型的集成以增强数据解读。最后,本综述强调了可穿戴应变传感器在推进预防性医疗保健和实现主动健康管理方面的革命性潜力,开创了一个实时健康洞察可带来更及时干预和更好健康结果的时代。
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来源期刊
Colloids and Surfaces B: Biointerfaces
Colloids and Surfaces B: Biointerfaces 生物-材料科学:生物材料
CiteScore
11.10
自引率
3.40%
发文量
730
审稿时长
42 days
期刊介绍: Colloids and Surfaces B: Biointerfaces is an international journal devoted to fundamental and applied research on colloid and interfacial phenomena in relation to systems of biological origin, having particular relevance to the medical, pharmaceutical, biotechnological, food and cosmetic fields. Submissions that: (1) deal solely with biological phenomena and do not describe the physico-chemical or colloid-chemical background and/or mechanism of the phenomena, and (2) deal solely with colloid/interfacial phenomena and do not have appropriate biological content or relevance, are outside the scope of the journal and will not be considered for publication. The journal publishes regular research papers, reviews, short communications and invited perspective articles, called BioInterface Perspectives. The BioInterface Perspective provide researchers the opportunity to review their own work, as well as provide insight into the work of others that inspired and influenced the author. Regular articles should have a maximum total length of 6,000 words. In addition, a (combined) maximum of 8 normal-sized figures and/or tables is allowed (so for instance 3 tables and 5 figures). For multiple-panel figures each set of two panels equates to one figure. Short communications should not exceed half of the above. It is required to give on the article cover page a short statistical summary of the article listing the total number of words and tables/figures.
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