Insight into mechanism of excellent visible-light photocatalytic activity of CuO/MgO/ZnO nanocomposite for advanced solution of environmental remediation

被引:16
作者
Imran M. [1 ]
Raza M. [2 ]
Noor H. [1 ]
Faraz S.M. [3 ]
Raza A. [1 ]
Farooq U. [4 ]
Khan M.E. [5 ]
Ali S.K. [6 ,7 ]
Bakather O.Y. [8 ]
Ali W. [5 ]
Bashiri A.H. [9 ]
Zakri W. [9 ]
机构
[1] Centre of Excellence in Solid State Physics, University of Punjab, Lahore
[2] Additive Manufacturing Institute, Shenzhen University, Shenzhen
[3] Department of Electronic Engineering, NED University of Engineering & Technology, Karachi
[4] Department of Chemistry, The Islamia University of Bahawalpur, Baghdad-ul-Jadeed Campus, Bahawalpur
[5] Department of Chemical Engineering Technology, College of Applied Industrial Technology, Jazan University, Jazan
[6] Department of Physical Sciences, Chemistry Division, College of Science, Jazan University, P.O. Box. 114, Jazan
[7] Nanotechnology Research Unit, College of Science, Jazan University, P.O. Box. 114, Jazan
[8] Chemical Engineering Department, College of Engineering and Computer Sciences, Jazan University, Jazan
[9] Department of Mechanical Engineering, College of Engineering, Jazan University, P. O. Box 114, Jazan
关键词
Metal oxides; Morphology; Photocatalysis; Photocatalytic mechanism; Water treatment;
D O I
10.1016/j.chemosphere.2024.142224
中图分类号
学科分类号
摘要
Environmental remediation has sought several innovative ways for the treatment of wastewater and captivated researchers around the globe towards it. Through this study, we aim to proceed with the efforts to foster sustainable and feasible ways for the treatment of wastewater. In this work, we report the sol-gel synthesis of CuO/MgO/ZnO nanocomposite and carry out their systematic characterization with the help of state-of-the-art analytical techniques, such as FTIR, SEM, TEM, PL, XRD, Raman, and AFM. The SEM along with TEM and AFM provided useful insights into the surface morphology of the synthesized nanocomposite on both 2D and 3D surfaces and concluded the well-dispersed behavior of the nanocomposite. The characteristic functional groups responsible for carrying out the reaction of Cu–O, Mg–O, and Zn–O were identified by FTIR spectroscopy. On the other hand, crystal size, dislocation density, and microstrain of the nanocomposite were calculated by XRD. For optical studies, photoluminescence spectroscopy was performed. Once the characterization of the nanocomposite was done, they were eventually treated against the toxic organic dye, methylene blue. The calculated rate constant values of k for CuO was 2.48 × 10−3 min−1, for CuO/MgO (2.04 × 10−3 min−1), for CuO/ZnO (1.82 × 10−3 min−1) and CuO/MgO/ZnO was found to be 2.00 × 10−3 min−1. It has become increasingly evident that nanotechnology can be used in various facets of modern life, and its implementation in wastewater treatment has recently received much attention. © 2024 Elsevier Ltd
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