STUDY OF THE STRUCTURAL AND ELECTRONIC CHARACTERISTICS OF ZnO AND Cu-DOPED ZnO PELLETS AS ALTERNATIVE THERMOELECTRIC GENERATOR ELEMENT

Prastika Ramadhani, Autia Nurul Pujianti, Akbar Sujiwa, Nur Aini Fauziyah

Abstract


In this study, a flexible thermoelectric generator (FTEG) based on ZnO was developed, employing an intrinsically n-type ZnO and Cu-doped ZnO, which is expected to modify the electrical properties of ZnO toward p-type behavior. The ZnO:Cu samples were synthesized using the sol-gel method and subsequently characterized using X-Ray Diffraction (XRD), UV-Vis spectroscopy, and electrical measurement. The UV-Vis result shows a reduction in band gap energy from 3.28 eV for ZnO to 3.12 eV for ZnO:Cu. This decrease indicates successful doping, which reduces the band gap energy and facilitates electron excitation from the valence band to the conduction band at room temperature. Electrical measurements reveal that ZnO:Cu pellets generate higher voltages compared to pure ZnO, suggesting that Cu doping effectively improves the electrical sensitivity of the material. In addition, the polishing process also affects the electrical output, where polished pellets exhibit higher voltage values than unpolished ones. Overall, the results indicate that Cu doping enhances the electrical properties of ZnO-based thermoelectric materials, highlighting their potential application as constituent materials in FTEG devices.

Keywords


ZnO; Cu-doped ZnO; Thermoelectric; Semiconductor; Band gap

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References


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DOI: https://doi.org/10.18860/neu.v19i1.38918

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