Affiliation:
1. Vinh University
2. Vietnam Academy of Science and Technology
3. Institute of Chemistry and Materials
4. Kyonggi University
Abstract
Abstract
Photocatalysts are an attractive solution for pollutant degradation under sunlight irradiation. One approach that has been proposed to enhance their activity is to combine two semiconductors, which can broaden the photon energy harvesting regions and improve charge separation. Herein, a facile approach to fabricating a g-C3N4@porphyrin nanorods hybrid material is presented using CTAB surfactant-assisted self-assembly of monomeric porphyrin molecules and g-C3N4 nanomaterials. The hybrid material was characterized using various technical methods, revealing a uniform distribution of porphyrin nanorods on the surface of g-C3N4. The photocatalytic performance of the hybrid material was evaluated by investigating its behavior for the photo -oxidation and -degradation of Cr6+ ions and methylene blue organic dye under simulated sunlight irradiation. High photocatalytic performance towards these two pollutants was exhibited by the hybrid material with a removal percentage of nearly 100% after 100 min of reaction time under the simulated sunlight spectrum. Furthermore, a potential photocatalytic mechanism of the C3N4@porphyrin nanorods photocatalyst was proposed, which involved the efficient separation and transfer of photo-induced electrons and holes on the surface of the hybrid material. An effective and facile method for developing high-performance photocatalysts is offered by this work, and advances in our understanding of their photocatalytic mechanisms have been made. The findings have important implications for wastewater treatment and solar energy conversion. The use of this hybrid material may contribute to addressing environmental challenges and assist in building sustainable energy systems.
Publisher
Research Square Platform LLC