Biocompatible carbon nanoparticles were successfully produced during the first period of the project and their use has been extended from the initial scope of the study. The first objective aiming to develop a biocompatible interface has been fully reached, thus providing a reliable method to immobilize the carbon nanoparticles onto a polycrystalline gold substrate. The in-depth characterization of the interface was carried out as planned using atomic force microscopy, high-resolution scanning electron microscopy, X-ray photoelectron spectroscopy and Fourier transform infrared spectroscopy analysis. The rich surface chemistry of the carbon nanoparticles was also exploited to compare the electrochemical response of biomolecules immobilized in an oriented manner on the gold electrode.
We extended the initial scope of the project to demonstrate the possibility to use these particles as unconventional catalysts for the hydrogen evolution reaction. The efficiency of the electrochemical reaction increased by 5 fold with a decrease of the activation energy by hundreds of millivolts. We used a oxygen reducing enzyme employed for the construction of biofuel cell applications and we revealed the influence of the AC frequency on the efficiency of the reaction. The enzymes activity increases by 2 fold under an optimum AC polarization frequency compared to that of a continuous operation mode. These results were obtained based on a successful collaboration with a neighboring institute and a research proposal was draft to ensure a proper follow-up of the work. For the purpose of the development of a biocompatible electrochemical interface, new types of fluorescent carbon nanoparticles, dopped with phosphate moieties, have been produced. These particles were used as a fluorescent sensing platform for hazardous chemicals such as copper ions and organic aromatic molecules. These nanoparticles are also an efficient crosslinking agent for the gelation of a chitosan polymer, and thus allowed the formation of fluorescent responsive hydrogels.
The fellow was able to present and to discuss the different aims and milestones of the research project within his research group amid the Covid 19 pandemy situation, offering multiple collaboration opportunities. The different studies carried out along the project were presented in the frame of an international congress on nanotechnologies (Nanomeet2021, Porto, Portugal). Finally, the Covid-19 pandemic has extended the delay of fabrication of the analytical apparatus allowing a precise frequency tuning on the signal imposed on the electrode/electrolyte interface, but the exploitation of the results is underway. The results of the studies carried out during the fellowship will be published in high impact journals after completion of three different manuscripts.