Artificial Intelligence-Aided Low Cost and Flexible Graphene Oxide-Based Paper Sensor for Ultraviolet and Sunlight Monitoring

Journal Article (2022)
Author(s)

Ahmed Abusultan (Khalifa University of Science and Technology)

Heba Abunahla (Khalifa University of Science and Technology)

Yasmin Halawani (Khalifa University of Science and Technology)

Baker Mohammad (Khalifa University of Science and Technology)

Nahla Alamoodi (Khalifa University of Science and Technology)

Anas Alazzam (Khalifa University of Science and Technology)

Affiliation
External organisation
DOI related publication
https://doi.org/10.1186/s11671-022-03727-y Final published version
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Publication Year
2022
Language
English
Affiliation
External organisation
Journal title
Nanoscale Research Letters
Issue number
1
Volume number
17
Article number
89
Downloads counter
14

Abstract

The adverse effect of ultraviolet (UV) radiation on human beings has sparked intense interest in the development of new sensors to effectively monitor UV and solar exposure. This paper describes a novel low-cost and flexible graphene oxide (GO)-based paper sensor capable of detecting the total amount of UV or sun energy delivered per unit area. GO is incorporated into the structure of standard printing paper, cellulose, via a low-cost fabrication technique. The effect of UV and solar radiation exposure on the GO paper-based sensor is investigated using a simple color change analysis. As a result, users can easily determine the amount of ultraviolet or solar energy received by the sensor using a simple color analysis application. A neural network (ANN) model is also explored to learn the relation between UV color intensity and exposure time, then digitally display the results. The accuracy for the developed ANN reached 96.83%. The disposable, cost-effective, simple, biodegradable, safe, and flexible characteristics of the paper-based UV sensor make it an attractive candidate for a variety of sensing applications. This work provides new vision toward developing highly efficient and fully disposable GO-based photosensors. Graphical Abstract: [Figure not available: see fulltext.]