Das Suma, Paramanik Swapnamoy, Nair Ranjith G, Chowdhury Avijit
Solar Energy Materials Research and Testing Laboratory (SMaRT Lab), Department of Physics, National Institute of Technology Silchar, Assam, 788010, India.
Department of Condensed Matter Physics and Material Sciences, S. N. Bose National Centre for Basic Sciences, Block JD, Sector-III, Salt Lake, Kolkata, 700106, India.
Chemistry. 2024 Nov 15;30(64):e202402512. doi: 10.1002/chem.202402512. Epub 2024 Oct 16.
Mesoporous catalysts with a high specific surface area, accessible pore structures, and appropriate band edges are desirable for optimal charge transfer across the interfaces, suppress electron-hole recombination, and promote redox reactions at the active sites. The present study demonstrates the rational design of mesoporous ZnFeO@g-CN magnetic nanocomposites (MNCs) with different pore sizes and pore volumes following a combination of facile thermal itching and thermal impregnation methods. The MNCs preserve the structural, morphological, and physical attributes of their counterparts while ensuring their effectiveness and superior catalytic capabilities. The morphological analysis confirms the successful grafting and confinement of ZnFeO nanoparticles with the polymeric g-CN nanosheets to form heterojunctions with numerous interfaces. The MNCs possess uniformly distributed small mesopores (pore size <4 nm), ample active sites, and a high specific surface area of 62.50 m/g. The mesoporous ZnFeO@g-CN notably improve hydrogen evolution rate and methylene blue dye degradation. The optimal loading weight of ZnFeO is 20 %, in which the MNCs display the highest hydrogen evolution rate of 1752 μmol g h and photo-Fenton dye degradation rate constants of 0.147 min, upon solar-light illumination. Furthermore, the photocatalysts demonstrate recyclability over five consecutive cycles, confirming their stability, while easy separation using a simple magnet underscores practical utility.