离子选择膜中增强汗液粘附的生物微纹理。

IF 18.1 Q1 ENGINEERING, BIOMEDICAL
Cyborg and bionic systems (Washington, D.C.) Pub Date : 2025-08-05 eCollection Date: 2025-01-01 DOI:10.34133/cbsystems.0337
Marc Josep Montagut Marques, Takayuki Masuji, Mohamed Adel, Ahmed M R Fath El-Bab, Kayo Hirose, Kanji Uchida, Hisashi Sugime, Shinjiro Umezu
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引用次数: 0

摘要

健康可穿戴技术的进步有可能预防严重的健康问题,如低钠血症和其他通常由剧烈体育活动引发的与水合作用有关的疾病。解决这一问题的方法包括开发包含碳纳米管(CNTs)的薄膜可穿戴传感器,这种传感器具有可扩展性、轻量化设计和卓越的电性能。碳纳米管纸是离子选择膜(ISMs)等电化学传感器的理想衬底,可以有效地监测皮肤上的电解质。然而,目前的皮肤上设备在维持人体运动时的性能方面经常面临限制。本研究介绍了一种仿生表面纹理技术,该技术模仿玫瑰花瓣的微观结构,以增强润湿性,自清洁性和ISM敏感性。通过复制玫瑰花瓣表面纹理的机械特性,新开发的ISM实现了2毫米气隙的精确测量,提供了改进的界面解决方案,促进了更好的汗水再循环和舒适性。这一进步克服了传统传感器的限制,为在现实条件下进行更可靠、更有效的非侵入性健康监测铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bioinspired Microtexturing for Enhanced Sweat Adhesion in Ion-Selective Membranes.

Advancements in health wearable technology hold the potential to prevent critical health issues such as hyponatremia and other hydration-related conditions often triggered by intense physical activities. Approaches to address this issue include the development of thin-film wearable sensors incorporating carbon nanotubes (CNTs), which offer scalability, lightweight design, and exceptional electrical properties. CNT paper serves as an ideal substrate for electrochemical sensors like ion-selective membranes (ISMs), enabling effective on-skin electrolyte monitoring. However, current on-skin devices often face limitations in maintaining performance during human motion. This study introduces a bioinspired surface texturing technique that mimics the microstructures of rose petals to enhance wettability, self-cleaning, and ISM sensitivity. By replicating the mechanical properties of the surface texture found on rose petals, the newly developed ISM achieves accurate measurements across a 2-mm air gap, offering an improved interfacing solution that promotes better sweat recirculation and comfort. This advancement overcomes the constraints of traditional sensors, paving the way for more reliable and effective noninvasive health monitoring in real-world conditions.

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来源期刊
CiteScore
7.70
自引率
0.00%
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审稿时长
21 weeks
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