The project addressed one relevant aspect of nonlinear optical phenomena at the nanoscale, namely the possibility to control second-harmonic generation in metal nanoantennas by electrical bias, i.e. by modulating the amount of surface charges on the nanostructures. Metal nanoantennas are widely used to boost light-matter interactions at the nanoscale because of their ability to sustain localized resonances supported by conduction electrons and, among the many applications, have been successfully applied over the last decade to boost nonlinear processes over regions smaller than the wavelength of the electromagnetic radiation, something that is not possible with conventional optics. Within this framework, the possibility to achieve an external and efficient control of the nonlinear conversion processes by electrical means would pave the road towards electrically-controlled devices that find applications e.g. in optical quantum protocols or sensing. To contribute to this goal, the PoSHGOAT project aimed at demonstrating the experimental feasibility of the concept by achieving modulation of the second harmonic generation (SHG) in electrically-connected antennas. Along this path, advanced nanofabrication techniques, numerical modeling, spectrally- and time-resolved spectroscopies were considered among the main ingredients for the realization and understanding of the modulation phenomena.