Graphitic carbon nitride (g-C3N4) has emerged as a photocatalyst material of interest due to its strong visible-light activity, good stability, and tunable electronic properties, making it attractive for environmental and energy-related applications. However, producing high quality exfoliated g-C3N4 nanosheets using a simple and low-cost technique remains challenging. In this work, bulk g-C3N4 was synthesized through the thermal polymerization of melamine and subsequently exfoliated ultrasonically in either deionized water (CN-DI) or isopropanol (CN-IPA). Different exfoliation pathways including thermal, chemical, and one-step methods were examined to determine their impact on the nanosheets’ structural and photocatalytic characteristics. X-ray diffraction (XRD) confirmed that the crystalline structure of g-C3N4 remained intact after exfoliation. Transmission electron microscopy (TEM) and scanning electron microscope (SEM) analyses showed the formation of ultrathin nanosheet-like structures with a layered morphology. The ultrathin nanosheets displayed broadened interlayer spacing, as further supported by UV-Vis and photoluminescence (PL) results that showed a noticeable red shift, enhanced light absorption, and reduced electron-hole recombination in CN-DI and CN-IPA compared with bulk g-C3N4. These improvements primarily stem from increased surface area, better charge separation, and more effective photon utilization achieved through ultrasonic exfoliation. Photocatalytic tests additionally revealed that both CN-DI and CN-IPA achieved more than 60% degradation of organic dyes under UV illumination. Overall, the findings highlight a straightforward, green, and scalable approach for producing high-performance g-C3N4 nanosheets suitable for wastewater purification under UV-light environment.
Soe, H. Y. ., Wichean, T. N. ., Panomsuwan, G. ., Jongprateep, O. ., & Techapiesancharoenkij, R. . (2026). Fabrication of g-C3N4 Nanosheets Through Solvent-Assisted Synthesis for Improved Photocatalytic Applications. Current Applied Science and Technology, e0270271. https://doi.org/10.55003/cast.2026.270271


https://cast.kmitl.ac.th/doi/10.55003/cast.2026.270271