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Rain energy harvesting using atomically thin Gadolinium Telluride decorated 3D Printed nanogenerator

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arxiv 2202.01927 v1 pith:YSO75TZL submitted 2022-01-18 physics.app-ph cond-mat.mtrl-sci

Rain energy harvesting using atomically thin Gadolinium Telluride decorated 3D Printed nanogenerator

classification physics.app-ph cond-mat.mtrl-sci
keywords energynanogeneratorprintedharvestingsurfacechargedecorateddroplet
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The 3D printing technology offers an innovative approach for developing energy storage devices to create facile and low-cost customized electrodes for modern electronics. Generating electric potential by moving a droplet of ionic solution over two-dimensional (2D) materials is a novel method for rain energy harvesting. This work demonstrated a liquid-solid contact electrification-based 3D printed nanogenerator where raindrop passes through the positively charged ultrathin Gadolinium Telluride (Gd2Te3) sheets. Experimental results showed that voltage as high as ~0.6 V could be generated by moving a droplet of ionic solution on the decorated 3D printed nanogenerator. The output efficiency of the nanogenerator is increased ~400% by enhancing the surface area of copious 3D printed porous structures. Density Functional Theory (DFT) calculations are done, revealing that the high electrical conductivity of (112) surface of Gd2Te3 is due to the p-type charge carriers. Additionally, we illustrate the enhancement of the output performance (~0.8V) by using a graphite rod and arbitrarily manipulating the surface charge. Therefore, this work can open up a new avenue to advance scientific research of Blue energy harvesting and tackle the energy crisis.

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