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通过 Pt 单原子催化剂协同增强可穿戴生物传感器进行汗液分析。

Synergistic enhancement of wearable biosensor through Pt single-atom catalyst for sweat analysis.

机构信息

Key Laboratory for Biorheological Science and Technology of Ministry of Education, Bioengineering College of Chongqing University, Chongqing, 400044, PR China.

Key Laboratory for Biorheological Science and Technology of Ministry of Education, Bioengineering College of Chongqing University, Chongqing, 400044, PR China; Chongqing Engineering and Technology Research Center of Intelligent Rehabilitation and Eldercare, Chongqing City Management College, Chongqing, 401331, PR China.

出版信息

Biosens Bioelectron. 2024 Aug 15;258:116354. doi: 10.1016/j.bios.2024.116354. Epub 2024 May 1.

Abstract

Real-time monitoring of biological markers in sweat is a valuable tool for health assessment. In this study, we have developed an innovative wearable biosensor for precise analysis of glucose in sweat during physical activities. The sensor is based on a single-atom catalyst of platinum (Pt) uniformly dispersed on tricobalt tetroxide (CoO) nanorods and reduced graphene oxide (rGO), featuring a unique three-dimensional nanostructure and excellent glucose electrocatalytic performance with a wide detection range of 1-800 μM. Additionally, density functional theory calculations have revealed the synergetic role of Pt active sites in the Pt single-atom catalyst (CoO/rGO/Pt) in glucose adsorption and electron transfer, thereby enhancing sensor performance. To enable application in wearable devices, we designed an S-shaped microfluidic chip and a point-of-care testing (POCT) device, both of which were validated for effectiveness through actual use by volunteers. This research provides valuable insights and innovative approaches for analyzing sweat glucose using wearable devices, contributing to the advancement of personalized healthcare.

摘要

实时监测汗液中的生物标志物是评估健康状况的一种有价值的工具。在这项研究中,我们开发了一种创新的可穿戴生物传感器,用于在体育活动中精确分析汗液中的葡萄糖。该传感器基于单原子催化剂的铂(Pt)均匀分散在三氧化二钴(CoO)纳米棒和还原氧化石墨烯(rGO)上,具有独特的三维纳米结构和出色的葡萄糖电催化性能,检测范围为 1-800 μM。此外,密度泛函理论计算揭示了 Pt 活性位点在 Pt 单原子催化剂(CoO/rGO/Pt)中对葡萄糖吸附和电子转移的协同作用,从而提高了传感器的性能。为了实现可穿戴设备的应用,我们设计了 S 形微流控芯片和即时检测(POCT)设备,并通过志愿者的实际使用验证了它们的有效性。这项研究为使用可穿戴设备分析汗液葡萄糖提供了有价值的见解和创新方法,为个性化医疗的发展做出了贡献。

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