Evaluation of diethylenetriaminepentaacetic acid modified chitosan immobilized in amino-carbmated alginate matrix as a low cost adsorbent for effective Cu(II) recovery
Author:
Shehzad Hamza1, Farooqi Zahoor H.1ORCID, Ahmad Ejaz1, Sharif Ahsan1, Irfan Ahmad23, Din Muhammad Imran1, Begum Robina1ORCID, Liu Zhirong4, Zhou Limin4, Ouyang Jinbo4, Rasheed Lubna5, Akram Tehreem1, Mahmood Azhar1
Affiliation:
1. School of Chemistry , University of the Punjab , Lahore 54590 , Pakistan 2. Department of Chemistry, Faculty of Science , King Khalid University , Abha 61413 , Saudi Arabia 3. Research Center for Advanced Materials Science , King Khalid University , Abha 61413 , Saudi Arabia 4. School of Chemistry, Biology and Material Sciences , East China University of Technology , Nanchang 330013 , P.R. China 5. Department of Chemistry, Division of Science and Technology , University of Education , Lahore 54770 , Pakistan
Abstract
Abstract
In present work, facile synthesis of a biocompatible hybrid biosorbent based on diethylenetriaminepentaacetic acid (DTPA) modified chitosan immobilized in organo-functionalized sodium alginate matrix (DTPA-MCSA) was carried out. DTPA-MCSA was casted in microspherical hydrogel beads. Three dimensional microporous geometry of the biosorbent remained well preserved as observed in SEM analysis which revealed the improved mechanical strength of the alginate matrix. Surface functionalization of base biopolymers was confirmed by FTIR and SEM analysis. Equilibrium sorption studies using DTPA-MCSA for Cu(II) from aqueous medium were carried out in batch mode and found considerably dependent on pH, contact sorption time, temperature and initial copper concentration. Isothermal sorption data showed close correlation with Langmuir model as evident from nonlinear fitting of data (R
2 ˜ 0.99) at different temperatures. The experimental sorption capacity (q
e) was found nearly 67 mg/g using 100 mg/L initial concentration of copper ions. Kinetic studies were conducted using different initial concentrations for better elucidation of results and it showed better correlation with pseudo second order rate equation which unveiled that strong ion pair coordination and complexation exist between Cu(II) and newly grafted chelating sites of DTPA-MCSA. Thermodynamic parameters suggested that the adsorption process is spontaneous and endothermic. The results concluded that DTPA-MCSA could be a better candidate for adsorptive remediation of copper ions from liquid waste.
Funder
University of the Punjab King Khalid University
Publisher
Walter de Gruyter GmbH
Subject
Physical and Theoretical Chemistry
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