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    Optimization of Arsenate Adsorption over Aluminum-Impregnated Tea Waste Biochar Using RSM–Central Composite Design and Adsorption Mechanism

    Source: Journal of Hazardous, Toxic, and Radioactive Waste:;2021:;Volume ( 025 ):;issue: 002::page 04020075
    Author:
    Ghazi Mohd. Sawood
    ,
    Ashutosh Mishra
    ,
    S. K. Gupta
    DOI: 10.1061/(ASCE)HZ.2153-5515.0000581
    Publisher: ASCE
    Abstract: Aluminum-impregnated tea waste activated carbon (Al-TC) synthesized for adsorption of arsenate at optimum conditions. The Al-TC produced through slow pyrolysis of tea waste followed by the impregnation of anhydrous aluminum. The operating conditions (initial metal concentration, pH, contact time, and adsorbent dose) were optimized using response surface methodology–central composite design statistical technique, with percentage arsenate removal as a targeted response. The response surface analyses and analysis of variance reveals an excellent fit of experimental data into the quadratic model, and the interactive effect of pH and initial concentration was highly significant on arsenate removal capacity. The obtained optimal conditions corresponding for good percentage arsenate removal were at 100 μg/L, pH 6.0, adsorbent dose 1.0 g, and contact time 1 h. The synthesized mesoporous adsorbent possesses a high surface area of 396 m2/g and an excellent uptake capacity of 99.6 μg/g. The probable mechanism for adsorption proposes that electrostatic forces and hydrogen bonding are responsible for adsorption of arsenic species (H2AsO4− and H3AsO4) at pH 2.0, the arsenic species, including HAsO4−2 and H2AsO4− are removed through adsorption and ion exchange at pH 6.0, and weak adsorption of AsO43− through ion exchange at pH 10.0. Coexisting PO43− and SiO32− ions negatively affect the arsenate adsorption whereas CO32−, SO42−, Ca2+, and Mg2+ ions do not have a significant impact on the adsorption process. The arsenate’s using Al-TC obeyed the Langmuir isotherm model and the kinetic data best fits into the pseudo-second order model. The adsorption process has proven to be spontaneous and endothermic. The produced Al-TC can be used very effectively for the treatment of arsenate containing aqueous media.
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      Optimization of Arsenate Adsorption over Aluminum-Impregnated Tea Waste Biochar Using RSM–Central Composite Design and Adsorption Mechanism

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4269345
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    contributor authorGhazi Mohd. Sawood
    contributor authorAshutosh Mishra
    contributor authorS. K. Gupta
    date accessioned2022-01-30T22:39:00Z
    date available2022-01-30T22:39:00Z
    date issued4/1/2021
    identifier other(ASCE)HZ.2153-5515.0000581.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4269345
    description abstractAluminum-impregnated tea waste activated carbon (Al-TC) synthesized for adsorption of arsenate at optimum conditions. The Al-TC produced through slow pyrolysis of tea waste followed by the impregnation of anhydrous aluminum. The operating conditions (initial metal concentration, pH, contact time, and adsorbent dose) were optimized using response surface methodology–central composite design statistical technique, with percentage arsenate removal as a targeted response. The response surface analyses and analysis of variance reveals an excellent fit of experimental data into the quadratic model, and the interactive effect of pH and initial concentration was highly significant on arsenate removal capacity. The obtained optimal conditions corresponding for good percentage arsenate removal were at 100 μg/L, pH 6.0, adsorbent dose 1.0 g, and contact time 1 h. The synthesized mesoporous adsorbent possesses a high surface area of 396 m2/g and an excellent uptake capacity of 99.6 μg/g. The probable mechanism for adsorption proposes that electrostatic forces and hydrogen bonding are responsible for adsorption of arsenic species (H2AsO4− and H3AsO4) at pH 2.0, the arsenic species, including HAsO4−2 and H2AsO4− are removed through adsorption and ion exchange at pH 6.0, and weak adsorption of AsO43− through ion exchange at pH 10.0. Coexisting PO43− and SiO32− ions negatively affect the arsenate adsorption whereas CO32−, SO42−, Ca2+, and Mg2+ ions do not have a significant impact on the adsorption process. The arsenate’s using Al-TC obeyed the Langmuir isotherm model and the kinetic data best fits into the pseudo-second order model. The adsorption process has proven to be spontaneous and endothermic. The produced Al-TC can be used very effectively for the treatment of arsenate containing aqueous media.
    publisherASCE
    titleOptimization of Arsenate Adsorption over Aluminum-Impregnated Tea Waste Biochar Using RSM–Central Composite Design and Adsorption Mechanism
    typeJournal Paper
    journal volume25
    journal issue2
    journal titleJournal of Hazardous, Toxic, and Radioactive Waste
    identifier doi10.1061/(ASCE)HZ.2153-5515.0000581
    journal fristpage04020075
    journal lastpage04020075-19
    page19
    treeJournal of Hazardous, Toxic, and Radioactive Waste:;2021:;Volume ( 025 ):;issue: 002
    contenttypeFulltext
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