Sustainable and Cost-Efficient Production of Micro-Patterned Reduced Graphene Oxide on Graphene Oxide Films

Author:

Alotibi Satam1ORCID,Qahtan Talal F.1,Alansi Amani M.2,Owolabi Taoreed O.3ORCID,Hameed Salah T.4,Afzal Naveed5,Bilal Sadia5,Salah Dina6ORCID

Affiliation:

1. Physics Department, College of Science and Humanities in Al-Kharj, Prince Sattam Bin Abdulaziz University, Al-Kharj 11942, Saudi Arabia

2. Chemistry Department, College of Science, Taiz University, Taiz 12372, Yemen

3. Physics and Electronics Department, Adekunle Ajasin University, Akungba Akoko 342111, Nigeria

4. Physics Department, Faculty of Education, Taiz University, Taiz 12372, Yemen

5. Centre for Advanced Studies in Physics, GC University, Lahore 54000, Pakistan

6. Biophysics Group, Physics Department, Faculty of Science, Ain Shams University, Cairo 11566, Egypt

Abstract

This study tackles the critical demand for sustainable synthesis methods of reduced graphene oxide (rGO), highlighting the environmental drawbacks of conventional chemical processes. We introduce a novel, green synthesis technique involving the irradiation of a 500 eV argon ion beam, which not only facilitates the creation of micro-patterned rGO on a graphene oxide (GO) film but also enables simultaneous material characterization and patterning. By adjusting the irradiation exposure time between 0 and 80 s, we achieve meticulous control over the attributes and the reduction process of the material. The use of X-ray photoelectron spectroscopy (XPS) allows for real-time monitoring of the reduction from GO to rGO, evidenced by a notable reduction in the intensities of C-O, C=O, and O-C=O bonds, and an increase in C-C bond intensities, indicating a significant reduction level. Our research demonstrates the efficient production of eco-friendly rGO using precise, controlled argon ion beam irradiation, proving its advantages over traditional methods. These results contribute to the development of sustainable material science technologies, with potential applications in electronics, energy storage, and more.

Publisher

MDPI AG

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