Original Research
Yb/WO3/Yb back to back Schottky barriers designed as voltage controlled rectifiers and as microwave resonators
A. F. Qasrawi
a
Rana B. Daragme
a

aPhysics Department, Arab American University, Jenin, Palestine

bDepartment of Electrical and Electronics Engineering, Istinye University, 34010 Istanbul, Turkey


Journal of Ovonic Research 2022, 18(2),253-258; https://doi.org/10.15251/JOR.2022.182.253
Submitted:Jan 08, 2022
Accepted:Apr 09, 2022
Published:Apr 12, 2022
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Cite This Article
A. F. Qasrawi ,Rana B. Daragme . (2022). Journal of Ovonic Research. Yb/WO3/Yb back to back Schottky barriers designed as voltage controlled rectifiers and as microwave resonators, 18(2), ,253-258. https://doi.org/10.15251/JOR.2022.182.253
Abstract

Herein, p __WO3 thin films coated onto ytterbium thin film substrates are used as active layers to fabricate a back to back Schottky (BBS) barriers. The Schottky contacts and the tungsten oxide active layers are grown by the thermal evaporation technique under a vacuum pressure of 10-5 mbar. The films are structurally, morphologically, optically and electrically characterized. The physical nature of the grown p __WO3 layers is amorphous comprising excess oxygen in its composition. Electrically, the BBS devices displayed a biasing dependent current rectification ratio confirming the tunneling type of Schottky barriers. The current conduction are dominated through tunneling barriers of height of ~0.80 eV. The barriers allow hole tunneling within energy barriers of widths of ~45 nm and of 300 nm under reverse and forward biasing conditions, respectively. In addition, the impedance spectroscopy measurements have shown the ability of wide tunability of the resistance and capacitance of the devices resulting in a microwave cutoff frequency exceeding 2.0 GHz. The resistive and capacitive features of the devices in addition to the microwave cutoff frequency spectra nominate the Yb/p-WO3/Yb BBS devices for use as microwave resonators suitable for 4G/5G technologies.

©2026 by the authors. Submitted for possible open access publication under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
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