111
Views
8
CrossRef citations to date
0
Altmetric
Research Articles

GO@Fe3O4@ZnO@CS nanocomposite as a novel adsorbent for removal of doxorubicin hydrochloride from aqueous solutions

, , &
Pages 82-91 | Received 06 Jun 2020, Accepted 18 Oct 2020, Published online: 08 Jan 2021

References

  • Ali, S.N.F., et al., 2019. Adsorption of chlorpheniramine and ibuprofen on surface functionalized activated carbons from deionized water and spiked hospital wastewater. Journal of environmental chemical engineering, 7 (1), 102860.
  • Anderson, A.B., Gergen, J., and Arriaga, E.A., 2002. Detection of doxorubicin and metabolites in cell extracts and in single cells by capillary electrophoresis with laser-induced fluorescence detection. Journal of chromatography. B, analytical technologies in the biomedical and life sciences, 769 (1), 97–106.
  • Azizian, S., Haerifar, M., and Basiri-Parsa, J., 2007. Extended geometric method: a simple approach to derive adsorption rate constants of Langmuir-Freundlich kinetics. Chemosphere, 68 (11), 2040–2046.
  • Banerjee, S., et al., 2018. Graphene oxide (rgo)-metal oxide (tio2/fe3o4) based nanocomposites for the removal of methylene blue. Applied surface science, 439, 560–568.
  • Cai, W., et al., 2019. Adsorption of doxorubicin hydrochloride on glutaric anhydride functionalized Fe3O4@SiO2 magnetic nanoparticles. Materials science & engineering. C, materials for biological applications, 98, 65–73.
  • Cantarella, M., et al., 2019. Molecularly imprinted polymer for selective adsorption of diclofenac from contaminated water. Chemical engineering journal, 367, 180–188.
  • Das, T.K., et al., 2020. Ultra-high arsenic adsorption by graphene oxide iron nanohybrid: removal mechanisms and potential applications. Chemosphere, 253, 126702.
  • Dening, T.J., Zemlyanov, D., and Taylor, L.S., 2019. Application of an adsorption isotherm to explain incomplete drug release from ordered mesoporous silica materials under supersaturating conditions. Journal of controlled release: official journal of the controlled release society, 307, 186–199.
  • Devaraj, M., et al., 2016. Fabrication of novel shape cu and Cu/Cu2O nanoparticles modified electrode for the determination of dopamine and paracetamol. Journal of molecular liquids, 221, 930–941.
  • Dhiman, N., and Sharma, N., 2019. Removal of pharmaceutical drugs from binary mixtures by use of zno nanoparticles:(competitive adsorption of drugs). Environmental technology & innovation, 15, 100392.
  • Dumitru, R., et al., 2019. Bifeo3-synthesis, characterization and its photocatalytic activity towards doxorubicin degradation from water. Ceramics international, 45 (2), 2789–2802.
  • Freundlich, H., and Heller, W., 1939. The adsorption of cis-and trans-azobenzene. Journal of the American chemical society, 61 (8), 2228–2230.
  • Fülöp, Z., Gref, R., and Loftsson, T., 2013. A permeation method for detection of self-aggregation of doxorubicin in aqueous environment. International journal of pharmaceutics, 454 (1), 559–561.
  • Ghaedi, M., et al., 2015. Modeling of competitive ultrasonic assisted removal of the dyes – methylene blue and safranin-o using Fe3O4 nanoparticles. Chemical engineering journal, 268, 28–37.
  • Ghoochian, M., et al., 2019. Synthesis and application of Fe3O4/SiO2/thermosensitive/PAMAM-CS nanoparticles as a novel adsorbent for removal of tamoxifen from water samples. Microchemical journal, 145, 1231–1240.
  • Gupta, V.K., et al., 2002. Removal of lindane and malathion from wastewater using bagasse fly ash—a sugar industry waste. Water research, 36 (10), 2483–2490.
  • Gupta, V.K., et al., 2014. A novel magnetic fe@au core-shell nanoparticles anchored graphene oxide recyclable nanocatalyst for the reduction of nitrophenol compounds. Water research, 48, 210–217.
  • Hassan, N., et al., 2020. Synthesis and characterization of zno nanoparticles via zeolitic imidazolate framework-8 and its application for removal of dyes. Journal of molecular structure, 1210, 128029.
  • Hu, J., et al., 2020. Enhanced luminescence in Yb3+ doped core-shell upconversion nanoparticles for sensitive doxorubicin detection. Journal of luminescence, 217, 116812.
  • Jamshidi, K., Ahmad Panahi, H., Sobhanardakani, S., and Hassani A.H., 2020. Removal of Pyrene from aqueous solutions using GO/Fe3O4/CC/AA as a novel adsorbent. International journal of environmental analytical chemistry. Available from https://www.tandfonline.com/doi/abs/https://doi.org/10.1080/03067319.2020.1758080?journalCode=geac20.
  • Khani, H., et al., 2010. Multi-walled carbon nanotubes-ionic liquid-carbon paste electrode as a super selectivity sensor: application to potentiometric monitoring of mercury ion(ii). Journal of hazardous materials, 183 (1–3), 402–409.
  • Langmuir, I., 1918. The adsorption of gases on plane surfaces of glass, mica and platinum. Journal of the American chemical society, 40 (9), 1361–1403.
  • Li, J., et al., 2019. Bioinspired pt-free molecularly imprinted hydrogel-based magnetic janus micromotors for temperature-responsive recognition and adsorption of erythromycin in water. Chemical engineering journal, 369, 611–620.
  • Mane, V.S., Mall, I.D., and Srivastava, V.C., 2007. Kinetic and equilibrium isotherm studies for the adsorptive removal of brilliant green dye from aqueous solution by rice husk ash. Journal of environmental management, 84 (4), 390–400.
  • Miao, J., et al., 2012. Adsorption of doxorubicin on poly(methyl methacrylate)-chitosan-heparin-coated activated carbon beads. Langmuir: the ACS journal of surfaces and colloids, 28 (9), 4396–4403.
  • Mittal, A., et al., 2010. Removal and recovery of chrysoidine y from aqueous solutions by waste materials. Journal of colloid and interface science, 344 (2), 497–507.
  • Mohammadi, N., et al., 2011. Adsorption process of methyl orange dye onto mesoporous carbon material-kinetic and thermodynamic studies. Journal of colloid and interface science, 362 (2), 457–462.
  • Płaziński, W., Rudziński, W., and Płazińska, A., 2009. Theoretical models of sorption kinetics including a surface reaction mechanism: a review. Advances in colloid and interface science, 152 (1–2), 2–13.
  • Sadeghi, M.H., Tofighy, M.A., and Mohammadi, T., 2020. One-dimensional graphene for efficient aqueous heavy metal adsorption: rapid removal of arsenic and mercury ions by graphene oxide nanoribbons (gonrs). Chemosphere, 253, 126647.
  • Saleh, T.A., and Gupta, V.K., 2011. Functionalization of tungsten oxide into mwcnt and its application for sunlight-induced degradation of rhodamine b. Journal of colloid and interface science, 362 (2), 337–344.
  • Saleh, T.A., and Gupta, V.K., 2012. Photo-catalyzed degradation of hazardous dye methyl orange by use of a composite catalyst consisting of multi-walled carbon nanotubes and titanium dioxide. Journal of colloid and interface science, 371 (1), 101–106.
  • Saleh, T.A., and Gupta, V.K., 2014. Processing methods, characteristics and adsorption behavior of tire derived carbons: a review. Advances in colloid and interface science, 211, 93–101.
  • Saravanan, R., et al., 2013a. Comparative study on photocatalytic activity of zno prepared by different methods. Journal of molecular liquids, 181, 133–141.
  • Saravanan, R., et al., 2013b. The photocatalytic activity of zno prepared by simple thermal decomposition method at various temperatures. Journal of molecular liquids, 177, 394–401.
  • Sobhanardakani, S., et al., 2018. Removal of heavy metal (Hg(II) and Cr(VI)) ions from aqueous solutions using Fe2O3@SiO2 thin films as a novel adsorbent. Process safety and environmental protection, 120, 348–357.
  • Suhas, V.K., et al., 2016. Cellulose: a review as natural, modified and activated carbon adsorbent. Bioresource technology, 216, 1066–1076.
  • Temkin, M., and Pyzhev, V., 1940. Recent modifications to Langmuir isotherms. Acta physiochim URSS, 12, 217–225.
  • Topal, M., and Arslan Topal, E.I., 2020. Optimization of tetracycline removal with chitosan obtained from mussel shells using rsm. Journal of industrial and engineering chemistry, 84, 315–321.
  • Weng, X., et al., 2018. Removal of doxorubicin hydrochloride using fe3o4 nanoparticles synthesized by euphorbia cochinchinensis extract. Chemical engineering journal, 353, 482–489.
  • Wu, S., et al., 2013. Adsorption properties of doxorubicin hydrochloride onto graphene oxide: equilibrium, kinetic and thermodynamic studies. Materials (Basel, Switzerland)), 6 (5), 2026–2042.
  • Yap, P.L., et al., 2020. Polyamine-modified reduced graphene oxide: a new and cost-effective adsorbent for efficient removal of mercury in waters. Separation and purification technology, 238, 116441.
  • Zandipak, R., and Sobhanardakani, S., 2016. Synthesis of NiFe2O4 nanoparticles for removal of anionic dyes from aqueous solution. Desalination and water treatment, 57 (24), 11348–11360.
  • Zandipak, R., Sobhan Ardakani, S., and Shirzadi, A., 2020. Synthesis and application of nanocomposite Fe3O4@ SiO2@ctab–SiO2 as a novel adsorbent for removal of cyclophosphamide from water samples. Separation science and technology, 55 (3), 456–470.
  • Zhao, Q., et al., 2019. Adsorption behavior of drugs on hydroxyapatite with different morphologies: a combined experimental and molecular dynamics simulation study. Ceramics international, 45 (15), 19522–19527.
  • Zidan, T.A., Abdelhamid, A.E., and Zaki, E.G., 2020. N-aminorhodanine modified chitosan hydrogel for antibacterial and copper ions removal from aqueous solutions. International journal of biological macromolecules, 158, 32–42.

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.