Boček Željka, Zubak Marko, Kassal Petar
University of Zagreb, Faculty of Chemical Engineering & Technology, Trg Marka Marulića 19, 10000 Zagreb, Croatia.
Biosensors (Basel). 2025 Jan 8;15(1):28. doi: 10.3390/bios15010028.
Prussian Blue (PB) is commonly incorporated into screen-printed enzymatic devices since it enables the determination of the enzymatically produced hydrogen peroxide at low potentials. Inkjet printing is gaining popularity in the development of electrochemical sensors as a substitute for screen printing. This work presents a fully inkjet-printed graphene-Prussian Blue platform, which can be paired with oxidase enzymes to prepare a biosensor of choice. The graphene electrode was inkjet-printed on a flexible polyimide substrate and then thermally and photonically treated with intense pulsed light, followed by inkjet printing of a PB nanoparticle suspension. The optimization of post-printing treatment and electrode deposition conditions was performed to yield a platform with minimal sheet resistance and peak potential differences. A thorough study of PB deposition was conducted: the fully inkjet-printed system was compared against sensors with PB deposited chemically or by drop casting the PB suspension on different kinds of carbon electrodes (glassy carbon, commercial screen-printed, and in-house inkjet-printed electrodes). For hydrogen peroxide detection, the fully inkjet-printed platform exhibits excellent sensitivity, a wider linear range, better linearity, and greater stability towards higher concentrations of peroxide than the other tested electrodes. Finally, lactate oxidase was immobilized in a chitosan matrix, and the prepared biosensor exhibited analytical performance comparable to other lactate sensors found in the literature in a wide, physiologically relevant linear range for measuring lactate concentration in sweat. The development of mediator-modified electrodes with a single fabrication technology, as demonstrated here, paves the way for the scalable production of low-cost, wearable, and flexible biosensors.
普鲁士蓝(PB)通常被整合到丝网印刷酶装置中,因为它能够在低电位下测定酶促产生的过氧化氢。喷墨打印作为丝网印刷的替代品,在电化学传感器的开发中越来越受欢迎。这项工作展示了一个完全喷墨打印的石墨烯 - 普鲁士蓝平台,它可以与氧化酶配对以制备所需的生物传感器。将石墨烯电极喷墨打印在柔性聚酰亚胺基板上,然后用强脉冲光进行热和光处理,接着喷墨打印PB纳米颗粒悬浮液。对打印后处理和电极沉积条件进行了优化,以获得具有最小薄层电阻和峰值电位差的平台。对PB沉积进行了深入研究:将完全喷墨打印的系统与通过化学方法沉积PB或通过将PB悬浮液滴铸在不同种类的碳电极(玻碳电极、商业丝网印刷电极和自制喷墨打印电极)上的传感器进行了比较。对于过氧化氢检测,与其他测试电极相比,完全喷墨打印的平台表现出优异的灵敏度、更宽的线性范围、更好的线性以及对更高浓度过氧化物的更高稳定性。最后,将乳酸氧化酶固定在壳聚糖基质中,所制备之生物传感器在测量汗液中乳酸浓度的广泛生理相关线性范围内,表现出与文献中其他乳酸传感器相当的分析性能。如本文所示,采用单一制造技术开发介体修饰电极,为低成本、可穿戴和柔性生物传感器的规模化生产铺平了道路。