Norouzi Abbas, Nezamzadeh-Ejhieh Alireza
Department of Chemistry, Shahreza Branch, Islamic Azad University, P.O. Box 311-86145, Shahreza, Isfahan, Iran.
Department of Chemistry, Shahreza Branch, Islamic Azad University, P.O. Box 311-86145, Shahreza, Isfahan, Iran; Department of Chemistry, Isfahan (Khorasgan) Branch, Islamic Azad University, Isfahan, Iran.
Spectrochim Acta A Mol Biomol Spectrosc. 2024 Apr 5;310:123888. doi: 10.1016/j.saa.2024.123888. Epub 2024 Jan 14.
Due to the potential ecosystem protection and management applications, searching for highly optimized semiconductor-based solar energy photocatalysts is still a significant challenge. Coupled α-FeO-ZnO nanoparticles were prepared in situ and characterized by various identification techniques such as XRD, SEM-EDX, TEM, DRS, and FT-IR. Its pHpzc was about 8.1. The band gap energies of ZnO, α-FeO and the coupled α-FeO-ZnO system were 3.22, 2.08, and 2.09 eV, respectively. The boosted photocatalytic activity of the coupled catalysts was designed via the RSM approach, and the optimal RSM conditions were pH 5, 25 min irradiation time, and 0.3 g/L of the α-FeO-ZnO containing 75 % ZnO. The center point conditions' run included 0.5 g/L of the coupled catalyst containing 50 % ZnO, pH 7, and 22.5 min illumination time. The study on scavenger agents showed the highest role of hydroxyl radicals in MB photodegradation by the proposed catalyst.
由于潜在的生态系统保护和管理应用,寻找高度优化的基于半导体的太阳能光催化剂仍然是一项重大挑战。原位制备了耦合的α-FeO-ZnO纳米颗粒,并通过XRD、SEM-EDX、TEM、DRS和FT-IR等各种鉴定技术对其进行了表征。其零电荷点pH约为8.1。ZnO、α-FeO和耦合的α-FeO-ZnO体系的带隙能量分别为3.22、2.08和2.09 eV。通过响应曲面法(RSM)设计了耦合催化剂的增强光催化活性,最佳RSM条件为pH 5、照射时间25分钟和0.3 g/L含75%ZnO的α-FeO-ZnO。中心点条件的实验包括0.5 g/L含50%ZnO的耦合催化剂、pH 7和光照时间22.5分钟。清除剂研究表明,在所提出的催化剂对亚甲基蓝的光降解中,羟基自由基起了最大作用。