材料科学
石墨烯
激光器
氯铂酸
铂纳米粒子
纳米技术
铂金
光电子学
光热治疗
辐照
聚酰亚胺
制作
催化作用
化学
光学
病理
物理
核物理学
替代医学
医学
生物化学
图层(电子)
作者
Dan Wang,Mingguang Han,Fu Liu,Weixiong Yang,Guantao Wang,Sida Luo
标识
DOI:10.1002/admt.202400058
摘要
Abstract Manufacturing of metal‐decorated carbon electrodes as a critical component of enzyme‐free glucose sensors has become an advanced strategy for fast and accurate glucose monitoring. By selectively irradiating the pre‐prepared chloroplatinic acid/polyimide (H 2 PtCl 6 /PI) precursor with photothermal energy, a creatively synchronized laser processing protocol is developed for assembling integrated three‐electrode system with platinum nanoparticle decorated laser‐induced graphene (PtNP‐LIG). In addition to the swift manufacturing of designable structures, laser power and raw‐material dosage are systematically explored as two key parameters to understand the process‐regulated microstructure and electro‐catalytic performance. Notably, by discovering the tuning mechanism for optimizing laser power‐dependent specific surface area of graphene backbone from 81.61 to 197.53 m 2 g −1 and for enhancing H 2 PtCl 6 concentration dependent Pt content from 0.75% to 4.16%, the sensitivity of PtNP‐LIG sensors to glucose oxidation has dramatically improved from 203.14 to 959.07 µA mM −1 cm −2 , following closely the adjustable discipline of electrochemically active surface area (ECSA) from 37.75 to 104.19 mm 2 . Along with rapid response time, low limit of detection, and broad linear range, the proposed protocol is highly beneficial for designing and manufacturing next‐generation wearable human‐health related devices.
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