Nardi Marco V, Timpel Melanie, Pasquardini Laura, Toccoli Tullio, Scarpa Marina, Verucchi Roberto
Institute of Materials for Electronics and Magnetism (IMEM-CNR), Trento Unit c/o Fondazione Bruno Kessler, Via alla Cascata 56/C, 38123 Trento, Italy.
Fondazione Bruno Kessler, Via Sommarive 18, 38123 Trento, Italy.
Materials (Basel). 2023 Jul 31;16(15):5390. doi: 10.3390/ma16155390.
The functionalization of inorganic surfaces by organic functional molecules is a viable and promising method towards the realization of novel classes of biosensing devices. The proper comprehension of the chemical properties of the interface, as well as of the number of active binding sites for bioreceptor molecules are characteristics that will determine the interaction of the sensor with the analyte, and thus its final efficiency. We present a new and reliable surface functionalization route based on supersonic molecular beam deposition (SuMBD) using 2,6-naphthalene dicarboxylic acid as a bi-functional molecular linker on the chemically inert silicon nitride surface to further allow for stable and homogeneous attachment of biomolecules. The kinetically activated binding of the molecular layer to silicon nitride and the growth as a function of deposition time was studied by X-ray photoelectron spectroscopy, and the properties of films with different thicknesses were investigated by optical and vibrational spectroscopies. After subsequent attachment of a biological probe, fluorescence analysis was used to estimate the molecular layer's surface density. The successful functionalization of silicon nitride surface via SuMBD and the detailed growth and interface analysis paves the way for reliably attaching bioreceptor molecules onto the silicon nitride surface.
通过有机功能分子对无机表面进行功能化是实现新型生物传感设备的一种可行且有前景的方法。正确理解界面的化学性质以及生物受体分子的活性结合位点数量是决定传感器与分析物相互作用进而决定其最终效率的特性。我们提出了一种基于超音速分子束沉积(SuMBD)的新型可靠表面功能化途径,使用2,6 - 萘二甲酸作为双功能分子连接体,在化学惰性的氮化硅表面上,以进一步实现生物分子的稳定和均匀附着。通过X射线光电子能谱研究了分子层与氮化硅的动力学活化结合以及作为沉积时间函数的生长情况,并通过光学和振动光谱研究了不同厚度薄膜的性质。在随后连接生物探针后,使用荧光分析来估计分子层的表面密度。通过SuMBD对氮化硅表面的成功功能化以及详细的生长和界面分析为将生物受体分子可靠地附着到氮化硅表面铺平了道路。