In this paper, we present a very simple technique to fabricate a triboelectric nanogenerator consisting of aluminum and PDMS (Polydimethylsiloxane) layers to harvest mechanical energy present in our surroundings. The proposed TENG device is capable of generating electricity by the process of contact-separation based triboelectrification between the anodic layer of aluminum (metal) and a cathodic layer of PDMS (polymer). To improve the performance of fabricated TENG, spherical shaped gold nanoparticles were synthesized and sprayed on the metallic layer to increase its contact area by increasing the surface roughness. In order to characterize the samples, various characterization techniques has been used like FESEM (Field Emission Scanning Electron Microscopy) and EDS (Energy Dispersive X-ray Spectroscopy). With the application of static weights/ force by hand on the fabricated TENG device, an open circuit voltage of 169 mV, short circuit current of 120.4 µA and maximum output power of 6.006µW has been achieved for an applied load resistance of 68 kΩ. Further the voltage, current and power output performance of the fabricated device has been measured and studied for different load resistances. The fabricated TENG demonstrates its application in the self-powered systems and wearable devices. The deposition of gold nanoparticles (AuNP’s) on the surface of the aluminum metal results in increasing the surface charge density with an increase in the surface area of contact between the metal and the PDMS based polymer layer. The device is sandwiched and force is applied either by fingers or by the use of static weights. With the variations in the force applied, there is a variation in various parameters like open circuit voltage, short circuit current and power. From the results it has been observed that the AuNP’s based TENG generates good results in spite of the fact that the gold has inferior triboelectric coefficient as compared with other metals. The AuNP’s based TENG so fabricated shows high robustness even in very hot and humid environment.
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