材料科学
生物电子学
纳米技术
生物传感器
纳米材料
含氟聚合物
纳米复合材料
电极
表面改性
碳纳米管
静电纺丝
石墨烯
聚合物
复合材料
化学工程
化学
物理化学
工程类
作者
Md Sharifuzzaman,Md Abu Zahed,Md Selim Reza,Md Asaduzzaman,Seonghoon Jeong,Hyesu Song,Dong Kyun Kim,Shipeng Zhang,Jae Yeong Park
标识
DOI:10.1002/adfm.202208894
摘要
Abstract While state‐of‐the‐art skin‐adhering fibrous electrodes have distinct benefits in personal wearable bioelectronics, considerable challenges persist in the production of fibrous‐based soft conductive biosensing nanomaterials and their integration into efficient multisensing platforms. Here, an electrochemical‐electrophysiological multimodal biosensing patch based on MXene/fluoropolymer nanofiber‐derived hierarchical porous TiO 2 nanocatalyst interconnected 3D fibrous carbon nanohybrid electrodes is reported. The nanohybrid electrode is produced via a one‐step laser carbonaceous thermal oxidation, resulting in excellent elctroconductivity (sheet resistance = 15.6 Ω sq −1 ), rich active edges for effective electron transmission, and abundant support for enzyme immobilization. The features are attributed to three synergistic effects: i) conductivity of the interior, unoxidized MXene layers, ii) quick heterogeneous electron transmission of the exterior TiO 2 nanoparticles, and iii) the porous disordered carbon's electron “bridge” effects. Based on the foregoing, the nanohybrid modified biosensing patch integrated into textile is demonstrated to be capable of simultaneously and precisely monitoring sweat glucose with pH adjustment (sensitivity of 77.12 µA m m −1 cm −2 within physiological concentrations of 0.01–2 × 10 −3 m ) and electrocardiogram signals (signal‐to‐noise ratio = 37.63 dB). This novel approach paves the way for controlled investigations of the nanohybrid, for several functionalization and design options, and for the mass manufacturing capabilities required in real‐world applications.
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