Bruckschlegel Christoph, Fleischmann Vivien, Ullrich Aladin, Girard Luc, Bauduin Pierre, Baeumner Antje J, Wongkaew Nongnoot
Institute of Analytical Chemistry, Chemo- and Biosensors, University of Regensburg, Universitaetsstrasse 31, 93053, Regensburg, Germany.
Institute of Physics, University of Augsburg, Universitaetsstrasse 1, 86159, Augsburg, Germany.
Anal Bioanal Chem. 2025 Jun;417(15):3337-3351. doi: 10.1007/s00216-025-05869-1. Epub 2025 Apr 11.
We propose a bimetallic alloy composed of Pt and Ni embedded within laser-induced carbon nanofibers (Pt/Ni-LCNFs) as an enzyme-free transducer for the detection of glucose under physiological pH. Laser exposure on electrospun polyimide nanofibers, embedded with Pt and Ni precursors, facilitated not only the formation of LCNFs but also the generation of Pt/Ni nanoparticles with a radius of approximately 2 nm and a distinctive crystalline structure. X-ray photoelectron spectroscopy revealed the oxidation states of the laser-generated Pt/Ni and confirmed the formation of the Pt/Ni alloy nanocatalysts. Additionally, small-angle X-ray scattering has shown that the graphitic structures of the LCNFs strongly depend on the metal salt concentrations and molar ratio. Pt/Ni-LCNFs were exploited as enzyme-free electrodes for glucose sensing at physiological pH. The presence of Pt in the alloy enabled a low potential (-0.9 V for 20 s) in situ generation of highly localized OH which facilitated glucose electrooxidation by Ni. Under optimized conditions, Pt/Ni-LCNFs achieved reliable glucose detection in physiological conditions (pH 7.4), with detection limit of 0.3 mM, linearity from 0.1 to 4 mM, and minimal interference from other electroactive species. Self-calibrated data acquisition strategy provided an excellent recovery rate (95 ± 10%) in diluted human serum. Furthermore, unlike enzyme-based sensors, the catalytic activity of Pt/Ni LCNFs was maintained after sterilization, highlighting their robustness and potential in biomedical applications and bioprocess monitoring.
我们提出一种由嵌入激光诱导碳纳米纤维(Pt/Ni-LCNFs)中的铂和镍组成的双金属合金,作为在生理pH值下检测葡萄糖的无酶传感器。对嵌入铂和镍前驱体的电纺聚酰亚胺纳米纤维进行激光照射,不仅促进了LCNFs的形成,还生成了半径约为2 nm且具有独特晶体结构的Pt/Ni纳米颗粒。X射线光电子能谱揭示了激光生成的Pt/Ni的氧化态,并证实了Pt/Ni合金纳米催化剂的形成。此外,小角X射线散射表明,LCNFs的石墨结构强烈依赖于金属盐浓度和摩尔比。Pt/Ni-LCNFs被用作在生理pH值下进行葡萄糖传感的无酶电极。合金中铂的存在使得能够在低电位(-0.9 V,持续20 s)原位生成高度局部化的OH,这促进了镍对葡萄糖的电氧化。在优化条件下,Pt/Ni-LCNFs在生理条件(pH 7.4)下实现了可靠的葡萄糖检测,检测限为0.3 mM,线性范围为0.1至4 mM,且来自其他电活性物质的干扰最小。自校准数据采集策略在稀释的人血清中提供了出色的回收率(95±10%)。此外,与基于酶的传感器不同,Pt/Ni LCNFs的催化活性在灭菌后得以保持,突出了它们在生物医学应用和生物过程监测中的稳健性和潜力。