Development of a bioresource-based adsorbent from activated coconut shell and chitosan-oxalic acid for safranin O dye removal: RSM optimization and circular resource management

This work demonstrates the design of a bioresource-based adsorbent for the effective removal of organic dyes, embodying the principles of circular resource management by transforming waste into a water-treatment resource. Thus, the current study aims to valorize activated lignocellulosic biomass (coconut shell) combined with chitosan-oxalic acid to develop an eco-friendly adsorbent of cross-linked chitosan-oxalic acid/activated coconut shell (CTS-OX/CS-H) for the uptake of safranin O (SFO) dye from water systems. Several methods, including pHpzc, XRD, CHNS-O, FTIR, BET, and FESEM, were used to study the physicochemical properties of CTS-OX/CS-H. The adsorption performance of CTS-OX/CS-H was optimized by the use of response surface methodology (RSM), taking into account variables such as CTS-OX/CS-H dose (0.02–0.08 g), pH (4–10), and time (10–40 min). The BBD model findings showed that a CTS-OX/CS-H dosage of 0.059 g, a solution pH of 9, and a removal time of 24.7 min were the ideal values for maximal SFO uptake (94.7%). The adsorption of SFO onto CTS-OX/CS-H is well described by the Freundlich isotherm and pseudo-first-order model, indicating multilayer adsorption on a heterogeneous surface governed mainly by physisorption. The CTS-OX/CS-H adsorbent exhibited a high adsorption capacity of 496.19 mg/g at an adsorbent dosage of 0.059 g, pH 9, and a temperature of 25 °C. Electrostatic forces between the positive group of SFO and the acidic groups of CTS-OX/CS-H are principally responsible for the remarkable adsorption of SFO onto CTS-OX/CS-H. This work supports environmental sustainability by integrating water treatment with circular waste management principles.

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Publication Details

Journal
International Journal of Phytoremediation
Published
2026-09-28
DOI
https://doi.org/10.1080/15226514.2026.2734565
Primary Topic
Adsorption and biosorption for pollutant removal
Type
article
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article

Development of a bioresource-based adsorbent from activated coconut shell and chitosan-oxalic acid for safranin O dye removal: RSM optimization and circular resource management

Ahmed Saud Abdulhameed, Samaa Abdullah, Mahmoud Abualhaija, Rima Heider Al Omari et al.
International Journal of Phytoremediation
Adsorption and biosorption for pollutant removal
article

Development of a bioresource-based adsorbent from activated coconut shell and chitosan-oxalic acid for safranin O dye removal: RSM optimization and circular resource management

Ahmed Saud Abdulhameed, Samaa Abdullah, Mahmoud Abualhaija, Rima Heider Al Omari, Mohammed Al-Yaari
article en

Abstract

This work demonstrates the design of a bioresource-based adsorbent for the effective removal of organic dyes, embodying the principles of circular resource management by transforming waste into a water-treatment resource. Thus, the current study aims to valorize activated lignocellulosic biomass (coconut shell) combined with chitosan-oxalic acid to develop an eco-friendly adsorbent of cross-linked chitosan-oxalic acid/activated coconut shell (CTS-OX/CS-H) for the uptake of safranin O (SFO) dye from water systems. Several methods, including pHpzc, XRD, CHNS-O, FTIR, BET, and FESEM, were used to study the physicochemical properties of CTS-OX/CS-H. The adsorption performance of CTS-OX/CS-H was optimized by the use of response surface methodology (RSM), taking into account variables such as CTS-OX/CS-H dose (0.02–0.08 g), pH (4–10), and time (10–40 min). The BBD model findings showed that a CTS-OX/CS-H dosage of 0.059 g, a solution pH of 9, and a removal time of 24.7 min were the ideal values for maximal SFO uptake (94.7%). The adsorption of SFO onto CTS-OX/CS-H is well described by the Freundlich isotherm and pseudo-first-order model, indicating multilayer adsorption on a heterogeneous surface governed mainly by physisorption. The CTS-OX/CS-H adsorbent exhibited a high adsorption capacity of 496.19 mg/g at an adsorbent dosage of 0.059 g, pH 9, and a temperature of 25 °C. Electrostatic forces between the positive group of SFO and the acidic groups of CTS-OX/CS-H are principally responsible for the remarkable adsorption of SFO onto CTS-OX/CS-H. This work supports environmental sustainability by integrating water treatment with circular waste management principles.

International Journal of Phytoremediation
Al-Ahliyya Amman University (JO), University of Jordan (JO), Applied Science Private University (JO), University of Anbar (IQ), University of Warith Al-Anbiyaa, King Faisal University (SA)
Openalex Percentile: Top 21%
Adsorption and biosorption for pollutant removal
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