tetracycline and hydroxide-ion

tetracycline has been researched along with hydroxide-ion* in 4 studies

Other Studies

4 other study(ies) available for tetracycline and hydroxide-ion

ArticleYear
Biochar-layered double hydroxide composites for the adsorption of tetracycline from water: synthesis, process modeling, and mechanism.
    Environmental science and pollution research international, 2023, Volume: 30, Issue:50

    Antibiotic-contaminated water is a crucial issue worldwide. Thus, in this study, the MgFeCa-layered double hydroxides were supported in date palm-derived biochar (B) using co-precipitation, hydrothermal, and co-pyrolysis methods. It closes gaps in composite design for pharmaceutical pollutant removal, advances eco-friendly adsorbents, and advances targeted water cleanup by investigating synthesis methodologies and gaining new insights into adsorption. The prepared B-MgFeCa composites were investigated for tetracycline (TC) adsorption from an aqueous solution. The B-MgFeCa composites synthesized through co-precipitation and hydrothermal methods exhibited better crystallinity, functional groups, and well-developed LDH structure within the biochar matrix. However, the co-pyrolysis method resulted in the LDH structure breakage, leading to the low crystalline composite material. The maximum adsorption of TC onto all B-MgFeCa was obtained at an acidic pH range (4-5). The B-MgFeCa composites produced via hydrothermal and co-pyrolysis methods showed higher and faster TC adsorption than the co-precipitation method. The kinetic results can be better described by Langmuir kinetic and mixed order models at low and high TC concentrations, indicating that the rate-limiting step is mainly associated with active binding sites adsorption. The Sip and Freundlich models showed better fitting with the equilibrium data. The TC removal by B-MgFeCa composites prepared via hydrothermal, the highest estimated uptake which is around 639.76 mg.g

    Topics: Adsorption; Anti-Bacterial Agents; Charcoal; Hydroxides; Kinetics; Tetracycline; Water; Water Pollutants, Chemical

2023
Adsorption performance of tetracycline on NiFe layered double hydroxide hollow microspheres synthesized with silica as the template.
    Journal of colloid and interface science, 2022, Volume: 627

    Tetracycline (TC) has poor degradability and hepatotoxicity which will increase the burden on the aquatic environment when discharged into lakes in large quantities. LDH materials are often used as adsorbents because of their superior surface area and controllability of morphology. Herein, NiFe LDH hollow microspheres (NFHMS) were synthesized by a facile hydrothermal method. The removal of tetracycline by the as-prepared material in an aquatic environment was systematically investigated through comprehensive characterizations. The NFHMS sample presents a larger specific surface area than the two control samples, which contributes to its higher adsorption performance. The adsorption mechanisms of TC on NFHMS is mainly electrostatic adsorption. The fitting results of experimental data coincide well with pseudo-second-order and Weber-Morris models through kinetic simulation. Moreover, the Langmuir model is verified to be more suitable than the Freundlich model in elucidating molecular surface adsorption, and the maximum adsorption capacity of NFHMS obtained from the Langmuir model is 90.9 mg g

    Topics: Adsorption; Anti-Bacterial Agents; Hydroxides; Kinetics; Microspheres; Silicon Dioxide; Tetracycline; Wastewater; Water Pollutants, Chemical

2022
Synthesis, characterization, and application of graphene oxide/layered double hydroxide /poly acrylic acid nanocomposite (LDH-rGO-PAA NC) for tetracycline removal: A comprehensive chemometric study.
    Chemosphere, 2022, Volume: 308, Issue:Pt 1

    Topics: Acrylates; Adsorption; Anti-Bacterial Agents; Chemometrics; Graphite; Hydroxides; Nanocomposites; Tetracycline; Wastewater; Water; Water Pollutants, Chemical

2022
Step scheme nickel-aluminium layered double hydroxides/biochar heterostructure photocatalyst for synergistic adsorption and photodegradation of tetracycline.
    Chemosphere, 2022, Volume: 309, Issue:Pt 2

    Topics: Adsorption; Aluminum; Aluminum Hydroxide; Anti-Bacterial Agents; Hydroxides; Nickel; Photolysis; Tetracycline; Water Pollutants, Chemical

2022