109
Views
0
CrossRef citations to date
0
Altmetric
Articles

Highly efficient removal of diclofenac sodium with polystyrene supported ionic liquid

, , , &
Pages 3276-3282 | Received 16 Dec 2022, Accepted 11 Apr 2023, Published online: 23 May 2023

References

  • Parida VK, Saidulu D, Majumder A, et al. Emerging contaminants in wastewater: a critical review on occurrence, existing legislations, risk assessment, and sustainable treatment alternatives. J Environ Chem Eng. 2021;9:105966.
  • Arabkhani P, Javadian H, Asfaram A, et al. Decorating graphene oxide with zeolitic imidazolate framework (ZIF-8) and pseudo-boehmite offers ultra-high adsorption capacity of diclofenac in hospital effluents. Chemosphere. 2021;271:129610.
  • Zhuang S, Wang J. Adsorptive removal of pharmaceutical pollutants by defective metal organic framework UiO-66: insight into the contribution of defects. Chemosphere. 2021;281:130997.
  • Zhang W, Huang T, Ren Y, et al. A multifunctional chitosan composite aerogel for PPCPs adsorption, Carbohydr Polym. 2022;298:120102.
  • Choudhary V, Philip L. Sustainability assessment of acid-modified biochar as adsorbent for the removal of pharmaceuticals and personal care products from secondary treated wastewater. J Environ Chem Eng. 2022;10:107592.
  • Guerra ACS, de Andrade MB, Tonial dos Santos TR, et al. Adsorption of sodium diclofenac in aqueous medium using graphene oxide nanosheets, Environ Technol. 2021;42:2599–2609.
  • Prasetya N, Li K. MOF-808 and its hollow fibre adsorbents for efficient diclofenac removal. Chem Eng J. 2021;417:129216.
  • Rigueto CVT, Rosseto M, Nazari MT, et al. Adsorption of diclofenac sodium by composite beads prepared from tannery wastes-derived gelatin and carbon nanotubes. J Environ Chem Eng. 2021;9:105030.
  • Bhadra BN, Seo PW, Jhung SH. Adsorption of diclofenac sodium from water using oxidized activated carbon. Chem Eng J. 2016;301:27–34.
  • Sun Q, Zheng HL, Hu XB, et al. Titanium-based hollow silica nanocarrier doped hydrogel for ultraviolet assisted removal of diclofenac sodium. Purif Technol. 2021;274:118694.
  • Jiménez-Salcedo M, Monge M, Tena MT. The photocatalytic degradation of sodium diclofenac in different water matrices using g-C3N4 nanosheets: a study of the intermediate by-products and mechanism. J Environ Chem Eng. 2021;9:105827.
  • Ceresa L, Guadagnini A, Porta GM, et al. Formulation and probabilistic assessment of reversible biodegradation pathway of diclofenac in groundwater. Water Res. 2021;204:117466.
  • Kang K, Jang M, Cui M, et al. Enhanced sonocatalytic treatment of ibuprofen by mechanical mixing and reusable magnetic core titanium dioxide. Chem Eng J. 2015;264:522–530.
  • Castro J, Paz S, Mena N, et al. Evaluation of heterogeneous catalytic ozonation process for diclofenac degradation in solutions synthetically prepared. Sci Pollut R. 2019;26:4488–4497.
  • Liu Y, Liang Z, Lin C, et al. Insights into efficient adsorption of the typical pharmaceutical pollutant with an amphiphilic cellulose aerogel. Chemosphere. 2022;291:132978.
  • S. A. Mirzaee, B. Bayati, M. R. Valizadeh, H. T. Gomes, Z. Noorimotlagh. Adsorption of diclofenac on mesoporous activated carbons: physical and chemical activation, modeling with genetic programming and molecular dynamic simulation. Chem Eng Res Des. 2021;167:116–128.
  • Al-Qodah Z, Shawaqfeh AT, Lafi WK. Two-resistance mass transfer model for the adsorption of the pesticide deltamethrin using acid treated oil shale ash. Adsorption. 2007;13:73–82.
  • Rad LR, Anbia M. Zeolite-based composites for the adsorption of toxic matters from water: a review. J Environ Chem Eng. 2021;9:106088.
  • Gabriella SM, de Andrade JR, ad Silva, MGC, et al. Adsorption of diclofenac sodium onto commercial organoclay: kinetic, equilibrium and thermodynamic study. Powder Technol. 2019;345:140–150.
  • Ivanković K, Kern M, Rožman M. Modelling of the adsorption of pharmaceutically active compounds on carbon-based nanomaterials. J Hazard Mater. 2021;414:125554.
  • Miao H, Hou H, Zhang W, et al. ligand-doped silver triazolate MOF on the removal of diclofenac sodium via anion exchange. Chemistry. 2020;5:11948–11954.
  • Yang T, Yang J, Deng X, et al. Modifying the electrocatalytic selectivity of oxidation reactions with ionic liquids, Angew Chem Int Ed. 2022;61(29):e202202957.
  • Belotti M, Lyu X, Xu L, et al. Experimental evidence of long-lived electric fields of ionic liquid bilayers. J Am Chem Soc. 2021;143:17431–17440.
  • Quintana AA, Sztapka AM, Santos Ebinuma VDC, et al. Enabling sustainable chemistry with ionic liquids and deep eutectic solvents: A Fad or the future? Angew Chem Int Ed. 2022;134(37):e202205609.
  • Avila J, Lepre LF, Santini CC, et al. High-performance porous ionic liquids for low-pressure CO2 capture, Angew Chem Int Ed. 2021;133:12986–12992.
  • Ozola-Davidane R, Burlakovs J, Tamm T, et al. Bentonite-ionic liquid composites for Congo red removal from aqueous solutions. J Mol Liq. 2021;337:116373.
  • Ranjbari S, Ayati A, Tanhaei B, et al. The surfactant-ionic liquid bi-functionalization of chitosan beads for their adsorption performance improvement toward Tartrazine. Environ Res. 2022;204:111961.
  • Lu D, Qin M, Liu C, et al. Ionic liquid-functionalized magnetic metal-organic framework nanocomposites for efficient extraction and sensitive detection of fluoroquinolone antibiotics in environmental water. ACS Appl Mater Interf. 2021;13:5357–5367.
  • Shan Q, Zhang J, Wang Y, et al. Preparation of ionic liquid-type UiO-66 and its adsorption desulfurization performance. Fuel. 2022;312:122945.
  • Lin Y, Wang F, Zhang Z, et al. Polymer-supported ionic liquids: synthesis, characterization and application in fuel desulfurization. Fuel. 2014;116:273–280.
  • Nguyen DS, Cho JK, Shin SH, et al. Reusable polystyrene-functionalized basic ionic liquids as catalysts for carboxylation of amines to disubstituted ureas, ACS Sustain Chem Eng. 2016;4:451.
  • He L, Lv L, Pillai SC, et al. Efficient degradation of diclofenac sodium by periodate activation using Fe/Cu bimetallic modified sewage sludge biochar/UV system. Total Environ. 2021;783:146974.
  • Bagheri A, Abu-Danso E, Iqbal J, et al. Modified biochar from Moringa seed powder for the removal of diclofenac from aqueous solution. Sci Pollut R. 2020;27:7318–7327.
  • Al-Qodah Z, Al-Shannag M, Amro A, et al. Impact of surface modification of green algal biomass by phosphorylation on the removal of copper(II) ions from water. Turk J Chem. 2017;41:190–208.
  • Al-Shawabkah R, Al-Qodah Z, Al-Bsoul A. Bio-adsorption of triadimenol pesticide from aqueous solutions using activated sludge of dairy plants. Water Treat. 2015;53:2555–2564.
  • Hasan Z, Khan NA, Jhung SH. Adsorptive removal of diclofenac sodium from water with Zr-based metal-organic frameworks. Chem Eng J. 2016;284:1406–1413.
  • Viotti PV, Moreira WM, dos Santos OAA, et al. Diclofenac removal from water by adsorption on Moringa oleifera pods and activated carbon: mechanism, kinetic and equilibrium study. J Clean Prod. 2019;219:517–809.
  • Youssef NAE, Amer E, EI Naga AOA, et al. Molten salt synthesis of hierarchically porous carbon for the efficient adsorptive removal of sodium diclofenac from aqueous effluents. J Taiwan Inst Chem Eng. 2020;113:114–125.
  • Feng Z, Odelius K, Rajarao GK, et al. Microwave carbonized cellulose for trace pharmaceutical adsorption. Chem Eng J. 2018;346:557–566.
  • Liang XX, Omer AM, Hu Z, et al. Efficient adsorption of diclofenac sodium from aqueous solutions using magnetic amine-functionalized chitosan. Chemosphere. 2019;217:270–278.
  • Jauris IM, Matos CF, Saucier C, et al. Adsorption of sodium diclofenac on graphene: a combined experimental and theoretical study. Phys Chem Chem Phys. 2016;18:1526–1536.
  • Araujo LA, Bezerra CO, Cusioli LF, et al. Diclofenac adsorption using a low-cost adsorbent derived from Guazuma ulmifolia Lam. fruit via chemical and thermal treatment. J Environ Chem Eng. 2021;9:106629.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.