Yıl: 2023 Cilt: 10 Sayı: 2 Sayfa Aralığı: 149 - 156 Metin Dili: İngilizce DOI: 10.54287/gujsa.1247152 İndeks Tarihi: 03-07-2023

Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect

Öz:
The triboelectric nanogenerator is a state-of-the-art device for addressing the growing problem of meeting the world's ever-increasing energy needs by converting mechanical energy into electrical energy. Using the popular semiconductor SnO2 nanostructured thin films as a triboelectric layer over contact regions, as opposed to polymers with lesser performance, increases the output power and life time of nanogenerators. In order to design a triboelectric nanogenerator, deposited thin film SnO2 is used as a friction layer with Ag electrode after heat-treatment at 623 K with a contrary layer of PMMA poly (methyl-methacrylate) with ITO electrode. The structural and electrical properties were analyzed by using scanning electron microscopy (SEM), electro-impedance spectroscopy (EIS) and atomic force microscopy (AFM) measurements. The increased output power of the triboelectric nanogenerator is attributed to the nanoscale PMMA contact charge created by tunneling electrons in the SnO2/Ag nanocomposite thin film layer. Due to its proximity to the PMMA/ITO surface, the SnO2/Ag layer causes electron field emission, and tapping the SnO2/Ag layer may result in electron cloud overlap. Similar to a semiconductor/insulator interface, the Fermi level of SnO2 plays a crucial role in electron transport. The system efficiency stated as a touch detector in a conventional keyboard that generates its own power is revealed in part by an analysis of its operating state up to the 4V.
Anahtar Kelime: Triboelectric Nanotechnology Nano-Energy Self-Electric Contact Dedector (SPCS)

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
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APA Durak Yüzüak G, CETIN M, Yüzüak E (2023). Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. , 149 - 156. 10.54287/gujsa.1247152
Chicago Durak Yüzüak Gizem,CETIN MEHMET,Yüzüak Ercüment Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. (2023): 149 - 156. 10.54287/gujsa.1247152
MLA Durak Yüzüak Gizem,CETIN MEHMET,Yüzüak Ercüment Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. , 2023, ss.149 - 156. 10.54287/gujsa.1247152
AMA Durak Yüzüak G,CETIN M,Yüzüak E Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. . 2023; 149 - 156. 10.54287/gujsa.1247152
Vancouver Durak Yüzüak G,CETIN M,Yüzüak E Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. . 2023; 149 - 156. 10.54287/gujsa.1247152
IEEE Durak Yüzüak G,CETIN M,Yüzüak E "Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect." , ss.149 - 156, 2023. 10.54287/gujsa.1247152
ISNAD Durak Yüzüak, Gizem vd. "Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect". (2023), 149-156. https://doi.org/10.54287/gujsa.1247152
APA Durak Yüzüak G, CETIN M, Yüzüak E (2023). Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. Gazi University Journal of Science Part A: Engineering and Innovation, 10(2), 149 - 156. 10.54287/gujsa.1247152
Chicago Durak Yüzüak Gizem,CETIN MEHMET,Yüzüak Ercüment Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. Gazi University Journal of Science Part A: Engineering and Innovation 10, no.2 (2023): 149 - 156. 10.54287/gujsa.1247152
MLA Durak Yüzüak Gizem,CETIN MEHMET,Yüzüak Ercüment Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. Gazi University Journal of Science Part A: Engineering and Innovation, vol.10, no.2, 2023, ss.149 - 156. 10.54287/gujsa.1247152
AMA Durak Yüzüak G,CETIN M,Yüzüak E Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. Gazi University Journal of Science Part A: Engineering and Innovation. 2023; 10(2): 149 - 156. 10.54287/gujsa.1247152
Vancouver Durak Yüzüak G,CETIN M,Yüzüak E Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect. Gazi University Journal of Science Part A: Engineering and Innovation. 2023; 10(2): 149 - 156. 10.54287/gujsa.1247152
IEEE Durak Yüzüak G,CETIN M,Yüzüak E "Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect." Gazi University Journal of Science Part A: Engineering and Innovation, 10, ss.149 - 156, 2023. 10.54287/gujsa.1247152
ISNAD Durak Yüzüak, Gizem vd. "Self-Powered Mechanical Energy Sensor Application of SnO2/Ag and PMMA/ITO Nanocomposites via Triboelectric Effect". Gazi University Journal of Science Part A: Engineering and Innovation 10/2 (2023), 149-156. https://doi.org/10.54287/gujsa.1247152