September 4, 2026

gholamreza Abdi

Academic Rank: Assistant professor
Address: -
Degree: Ph.D in -
Phone: -
Faculty: Persian Gulf Research Institue

Research

Title
Fabrication of biobased Fe-O₄-alginate aerogel composite modified by O₂Ag@Ag nanoparticles - Green synthesis for organic dye removal and pseudo-Fenton catalytic oxidation and investigation of the effects of geographical origin on secondary metabolites of chaste tree (Vitex castus-agnus) using ultraviolet spectroscopy and multivariate chemometrics methods
Type Thesis
Keywords
آلژينات، آيروژل، رنگ، متيلن بلو، R-PLS، گياه پنجانگشت، FTIR، شيميسنجي، PCA، متابوليتهاي ثانويه، منشأ جغرافيايي، كيفيت گياه دارويي
Researchers najib mohaseli (Student) , Maryam Abbasi Tarighat (First primary advisor) , gholamreza Abdi (Advisor)

Abstract

Background: Water resource contamination, particularly by industrial dyes, is a major environmental challenge and a serious threat to public health. The discharge of these compounds into aquatic environments reduces water quality, damages aquatic ecosystems, and poses health risks. Therefore, the development of green, efficient, and recoverable adsorbents for removing dye pollutants from wastewater is essential. Objective: This study aimed to design and synthesize an environmentally friendly hybrid aerogel with simultaneous adsorption and catalytic capability (multifunctional), easy recovery, and high stability for the removal and oxidation of methylene blue, Safranin-O, and fuchsin dyes in aqueous media. Additionally, determination of optimal operational conditions using a multivariate statistical approach was investigated. Methodology: A hybrid aerogel based on the biopolymer sodium alginate was synthesized. To impart magnetic properties and improve structure, Fe₃O₄ nanoparticles synthesized using Aloe vera extract were incorporated into the aerogel matrix. The surface was then modified by Ag@Ag₂O nanoparticles synthesized using palm tree-leaf extract via the immersio method. For pseudo-Fenton investigations, chitosan was also incorporated into the aerogel structure to enhance stability and catalytic degradation performance. Structural and morphological characterization was performed using XRD, SEM, FTIR, EDS, DLS, and AFM analyses. Experimental design was conducted using a factorial approach, and the effects of operational variables (pH, adsorbent dosage, and contact time) were analyzed using MANOVA statistical testing. Results indicated that pH and adsorbent dosage significantly affected removal efficiency, while contact time showed no significant effect. Partial least squares regression (PLS-R) was used for modeling, prediction, and optimization. Optimal conditions were selected based on both predicted 190 responses and residual analysis, choosing experiments w