Electrical and Computer Engineering Faculty Publications

Document Type

Article

Publication Date

7-2026

Abstract

Perovskite solar cells offer promising efficiency compared to traditional technologies. In this study, NiOx and ZnO were employed as charge transport layers using a magnetron sputtering process within a p-i-n architecture (ITO/NiOx/CsPbI3/ZnO/Au). This approach produced uniform, low-defect interfaces and supports low-temperature, scalable fabrication suitable for flexible substrates. Our investigation, using techniques such as X-Ray Diffraction (XRD), UV-Visible spectroscopy, Scanning Electron Microscopy (SEM), and Atomic Force Microscope (AFM), revealed the formation of uniform layers deposited by the magnetron sputtering process. The photoactive CsPbI3 layer was deposited via a spin coating solution process. UV-Visible spectroscopy revealed strong absorbance in the wavelength range of 400 - 750 nm, corresponding to a band gap of 1.67 eV. XRD analysis confirmed the crystalline structure of both transport and active layers. Surface morphology studies revealed that CsPbI3 formed large grains with good coverage, which contributed to improved device performance. AFM analysis revealed uniform surface coverage with low surface roughness values of 0.7 nm and 3.4 nm for NiOx and ZnO, respectively. The best-performing device achieved a power conversion efficiency of 7.8%, with an open-circuit voltage of 0.82 V, a short-circuit current density of 14.25 mA/cm2, and a fill factor of 67%. These results demonstrate the potential of combining sputter-deposited transport layers with solution-processed perovskites for efficient, scalable photovoltaic devices.

Comments

Copyright © 2026 by authors and Scientific Research Publishing Inc.

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.

Creative Commons License

Creative Commons Attribution 4.0 International License
This work is licensed under a Creative Commons Attribution 4.0 International License.

Publication Title

Journal of Modern Physics

DOI

10.4236/jmp.2026.177039

Share

COinS
 
 

To view the content in your browser, please download Adobe Reader or, alternately,
you may Download the file to your hard drive.

NOTE: The latest versions of Adobe Reader do not support viewing PDF files within Firefox on Mac OS and if you are using a modern (Intel) Mac, there is no official plugin for viewing PDF files within the browser window.