Synergistic Effect of Coupling Ozonation/Adsorption System for Toxic Dye Efficient Removal: Chemometric Optimization by Box-Behnken Response Surface Methodology

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Date

2023

Journal Title

Journal ISSN

Volume Title

Publisher

Elsevier Science inc

Open Access Color

GOLD

Green Open Access

No

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No
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Top 10%
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Average
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Top 10%

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Abstract

This work aims to optimize the ozonation/adsorption coupling system as an advanced technique for the removal of the dye crystal violet (CV) in the presence of new innovative material based on the Capparis spinosa L waste (CSLW). Data from operational parameters such as adsorbent dose (X1), CV concentration (X2), and oxygen flow rate (X3) were used to optimize the dye removal rate (Y) by the Box-Behnken design (BBD) response surface methodology. Under the ideal conditions of X1 (2 g center dot L-1), X2 (100 mg center dot L-1), and X3 (4 L center dot min-1), the rate Y exceeded 99.75%. The complete removal of the CV dye by the ozonation/adsorption coupling results from the selective interactions between the surface groups of the CSLW material, the ozone, and the various charges present in the solution. The coupling mechanism indicates that ozonation partially degrades the CV dye and the adsorption process significantly increases the percentage of removal due to the different adsorbent-adsorbate interactions. Due to the low power consumption of the oxygenator and ozonator and the lack of CSLW cost, the treatment of CV by the ozonation/adsorption coupling could cost about $1.8518 L-1. Thus, this process could be generalized through an industrial pilot-scale application.

Description

Benjelloun, Mohammed/0000-0003-1086-3689; Atmaca, Bahar/0000-0002-8142-1151

Keywords

Box Behnken Design, Capparis Spinosa L Waste, Cost, Mechanism, Ozonation/Adsorption, Coupling, Cost, Ozonation/adsorption, Mechanism, coupling, Box Behnken design, Capparis spinosa L waste

Fields of Science

Citation

WoS Q

Q4

Scopus Q

Q3
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OpenCitations Citation Count
9

Source

Desalination and Water Treatment

Volume

306

Issue

Start Page

220

End Page

235
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CrossRef : 4

Scopus : 14

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Mendeley Readers : 20

SCOPUS™ Citations

14

checked on Feb 20, 2026

Web of Science™ Citations

8

checked on Feb 20, 2026

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2.80080567

Sustainable Development Goals

9

INDUSTRY, INNOVATION AND INFRASTRUCTURE
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