Nanobioelectronics & Biosensors Group, Catalan Institute of Nanoscience and Nanotechnology (ICN2) CSIC and BIST, Campus UAB, Bellaterra, 08193 Barcelona, Spain.
Department of Bioscience and Technology for Food, Agriculture and Environment, University of Teramo, Campus "Aurelio Saliceti" Via R. Balzarini 1, 64100 Teramo, Italy.
ACS Sens. 2023 Feb 24;8(2):598-609. doi: 10.1021/acssensors.2c01782. Epub 2023 Feb 3.
The combination of two-dimensional materials and metal nanoparticles (MNPs) allows the fabrication of novel nanocomposites with unique physical/chemical properties exploitable in high-performance smart devices and biosensing strategies. Current methods to obtain graphene-based films decorated with noble MNPs are cumbersome, poorly reproducible, and difficult to scale up. Herein, we propose a straightforward, versatile, surfactant-free, and single-step technique to produce reduced graphene oxide (rGO) conductive films integrating "naked" noble MNPs. This method relies on the instantaneous laser-induced co-reduction of graphene oxide and metal cations, resulting in highly exfoliated rGO nanosheets embedding gold, silver, and platinum NPs. The production procedure has been optimized, and the obtained nanomaterials are fully characterized; the hybrid nanosheets have been easily transferred onto lab-made screen-printed electrodes preserving their nanoarchitecture. The Au@rGO-, Ag@rGO-, and Pt@rGO-based electrodes have been challenged to detect caffeic acid, nitrite, and hydrogen peroxide in model solutions and real samples. The sensors yielded quantitative responses ( ≥ 0.997) with sub-micromolar limits of detections (LODs ≤ 0.6 μM) for all the analytes, allowing accurate quantification in samples (recoveries ≥ 90%; RSD ≤ 14.8%, = 3). This single-step protocol which requires low cost and minimal equipment will allow the fabrication of free-standing, MNP-embedded rGO films integrable into a variety of scalable smart devices and biosensors.
二维材料与金属纳米粒子(MNPs)的结合,使制备具有独特物理/化学性质的新型纳米复合材料成为可能,这些复合材料可应用于高性能智能设备和生物传感策略中。目前获得具有贵金属 MNPs 修饰的石墨烯基薄膜的方法繁琐、重现性差且难以扩展。在此,我们提出了一种简单、通用、无表面活性剂且一步法制备“裸露”贵金属 MNPs 掺杂还原氧化石墨烯(rGO)导电薄膜的方法。该方法依赖于瞬时激光诱导氧化石墨烯和金属阳离子的共还原,从而得到高度剥离的 rGO 纳米片,其中嵌入有金、银和铂纳米颗粒。优化了制备工艺,对所得纳米材料进行了全面的表征;通过简单的转移过程将混合纳米片转移到实验室自制的丝网印刷电极上,保留其纳米结构。基于 Au@rGO、Ag@rGO 和 Pt@rGO 的电极已用于检测模型溶液和实际样品中的咖啡酸、亚硝酸盐和过氧化氢。这些传感器对所有分析物均表现出定量响应(≥0.997)和亚微米级检测限(LOD≤0.6 μM),可在样品中进行准确的定量(回收率≥90%;RSD≤14.8%,n=3)。这种只需低成本和最少设备的单步方案,将允许制备可独立存在、嵌入 MNPs 的 rGO 薄膜,并可集成到各种可扩展的智能设备和生物传感器中。