442
Views
12
CrossRef citations to date
0
Altmetric
Original Articles

Biocomposite based electrode for effective removal of Cr (VI) heavy metal via capacitive deionization

, , &

References

  • Atta, N. F., Galal, A., and Ali, S. M. (2012). Determination of the diffusion coefficients for charge transfer through homo-, bilayered- and co-polymers of 3-methyl thiophe and M methylpyrrole, Int. J. Electrochem. Sci., 7, 785–805.
  • Chen, Y., and Jepson, W. P. (1999). EIS measurement for corrosion monitoring under multiphase flow conditions, Electrochim. Acta, 44, 4453–4464.
  • Chen, Z., Zhang, H., Wu, C., Wang, Y., and Li, W. (2015). A study of electrosorption selectivity of anions by activated carbon electrodes in capacitive deionization, DES, 369, 46–50.
  • Dai, M., Xia, L., Song, S., Peng, C., Rangel-Mendez, J. R., and Cruz-Gaona, R. (2018). Applied surface science electrosorption of as (III) in aqueous solutions with activated carbon as the electrode, Appl. Surf. Sci., 434, 816–821.
  • Gaw-Hao, H., Chen, T. C., Hsu, S. F., Huang, Y. H., and Chuang, S. H. (2014). Capacitive deionization (CDI) for removal of phosphate from aqueous solution, Desalin. Water Treat., 52, 759–765.
  • Guo, Z., Li, D. D., Luo, X. K., Li, Y. h., Zhao, Q. N., Li, M. M., Zhao, Y. T., Sun, T. S., and Ma, C. (2017). Simultaneous determination of trace cd(II), Pb(II) and Cu(II) by differential pulse anodic stripping voltammetry using a reduced graphene oxide-chitosan/poly-L-lysine nanocomposite modified glassy carbon electrode, J. Colloid Interface Sci., 490, 11–22.
  • Han, H., Pan, D., Liu, D., Hu, X., Lin, M., and Li, F. (2015). Cathodic stripping voltammetric determination of chromium in coastal waters on cubic nano-titanium carbide loaded gold nanoparticles modified electrode, Front. Mar. Sci., 2, 1–7.
  • He, X., Li, C., Zhu, Q., Hou, B., Jiang, Y., and Wu, L. (2014). Electrochemical mechanism of Cr (III) reduction for 1-butyl-3-methylimidazolium hydrogen sulfate, RSC Adv., 4, 64174–64182.
  • Hirunpraditkoon, S., Tunthong, N., Ruangchai, A., and Nuithitikul, K. (2011). Adsorption capacities of activated carbons prepared from bamboo by KoH activation. IJCME., 5, 477–481.
  • Hou, C., Huang, J., Lin, H., and Wang, B. (2012). Journal of the Taiwan institute of chemical engineers preparation of activated carbon sheet electrode assisted electrosorption process, J. Taiwan Inst. Chem. Eng., 43, 472–478.
  • Huang, Z., Lu, L., Cai, Z., and Ren, Z. J. (2016). Individual and competitive removal of heavy metals using capacitive deionization, J. Hazardous Mater., 302, 323–331.
  • Hussain, G., and Silvester, D. S. (2018). Comparison of voltammetric techniques for ammonia sensing in ionic liquids, Electroanalysis, 30, 75–83.
  • Kalavathy, M. H., Karthikeyan, T., Rajgopal, S., and Miranda, L. R. (2005). Kinetic and isotherm studies of Cu (II) adsorption onto H 3 PO 4 -activated rubber wood sawdust, J. Colloid Interface Sci., 292, 354–362.
  • Karthikeyan, T., Rajgopal, S., and Miranda, L. R. (2005). Chromium (VI) adsorption from aqueous solution by Hevea brasilinesis sawdust activated carbon, J. Hazardous Mater., 124, 192–199.
  • Li, Y., Jiang, Y., Wang, T., Zhang, C., and Wang, H. (2017). Performance of fluoride electrosorption using micropore-dominant activated carbon as an electrode, Sep. Purif. Technol., 172, 415–421.
  • Liu, G., Lin, Y., Wu, H., and Lin, Y. (2008). Voltammetric detection of Cr (VI) with disposable screen-printed electrode modified with gold nanoparticles, Environ. Sci. Technol., 41, 8129–8134.
  • Liu, Y., Ma, W., Cheng, Z., Xu, J., Wang, R., and Gang, X. (2013). Preparing CNTs/Ca-selective zeolite composite electrode to remove calcium ions by capacitive deionization, DES, 326, 109–114.
  • Mahendra, S. G., and Chandrajit, B. (2017). Simultaneous electrosorptive removal of chromium (VI) and fluoride ions by capacitive deionization (CDI): multicomponent isotherm modelling and kinetic study, Sep. Purif. Technol., 186, 272–281.
  • March, G., Nguyen, T., and Piro, B. (2015). Modified electrodes used for electrochemical detection of metal ions in environmental analysis, Biosensor, 5, 241–275.
  • Mopoung, S., Moonsri, P., Palas, W., and Khumpai, S. (2015). Characterization and properties of activated carbon prepared from tamarind seeds by KOH activation for Fe (III) adsorption from aqueous solution. Scientific World J., 2015, 1–9.
  • Morikita, T., and Yamamoto, T. (2001). Electrochemical determination of diffusion coefficient of p -conjugated polymers containing ferrocene unit, J. Organometall. Chem., 639, 809–812.
  • Park, S. H., Mcclain, S., Tian, Z. R., Suib, S. L., and Karwacki, C. (1997). Surface and bulk measurements of metals deposited on activated carbon, Chem. Mater., 4756, 176–183.
  • Pellerin, C., and Booker, S. M. (2000). Reflections on hexavalent chromium: Health hazards of an industrial heavyweight, Environ. Health Perspect., 108, 402–407.
  • Prabhakaran, D. C., Riotte, J., Sivry, Y., and Subramanian, S. (2017). Electroanalytical detection of Cr(VI) and Cr(III) ions using a novel microbial sensor, Electroanalysis, 29, 1222–1231.
  • Putra, B. R., Darusman, L. K., and Rohaeti, E. (2013). Carbon paste electrode hexa decyltrimethylammonium bromide modified natural zeolite for chromium (vi) detection, Indones. J. Chem., 13, 122–128.
  • Quan, C., and He, Y. (2015). Properties of nanocrystalline Cr coatings prepared by cathode plasma electrolytic deposition from trivalent chromium electrolyte, Surf. Coatings Technol., 269, 319–323.
  • Raji, F., and Pakizeh, M. (2014). Study of Hg (II) species removal from aqueous solution using hybrid ZnCl2- MCM-41 adsorbent applied surface science study of Hg (II) species removal from aqueous solution using hybrid ZnCl 2 -MCM-41 adsorbent, Appl. Surf. Sci., 282, 415–424.
  • Rajpurohit, A. S., Punde, N. S., Rawool, C. R., and Srivastava, A. K. (2018). Application of carbon paste electrode modified with carbon nanofibres/polyaniline/platinum nanoparticles as an electrochemical sensor for the determination of bezafibrate, Electroanalysis, 30, 1–13.
  • Rong, C., and Xien, H. (2005). Electrosorption of thiocyanate anions on active carbon felt electrode in dilute solution, J. Colloid Interf. Sci., 290, 190–195.
  • Santhy, W. (2015). Voltammetric determination of Cr(VI) using gold nanoparticles modified glassy carbon electrode, Procedia Chem., 16, 15–23.
  • Senthilkumar, T., Chattopadhyay, S. K., Miranda, L. R., Chattopadhyay, S. K., and Miranda, L. R. (2017). Optimization of activated carbon preparation from pomegranate peel (Punica granatum peel) using RSM optimization of activated carbon preparation from pomegranate peel (Punica granatum peel) using RSM, Chem. Eng. Commun., 204, 238–248.
  • Terzyk, A. P. (2001). The influence of activated carbon surface chemical composition on the adsorption of acetaminophen (paracetamol) in vitro part II. TG, FTIR, and XPS analysis of carbons and the temperature dependence of adsorption kinetics at the neutral pH, Colloids Surf. A, 177, 23–45.
  • Ulfah, M., Raharjo, S., Hastuti, P., and Darmadji, P. (2016). The potential of palm kernel shell activated carbon as an adsorbent for β -carotene recovery from crude palm oil, AIP Conf. Proc., 1755, 1–6.
  • Wang, C., and Chan, C. K. (2016). Carbon nanotube – based electrodes for detection of low – ppb level hexavalent chromium using amperometry, ECS J. Solid State Sci. Technol., 5, 3026–3031.
  • Weng, W., Wang, M., Gong, X., Wang, Z., Wang, D., and Guo, Z. (2016). Direct electro-deposition of metallic chromium from K2CrO4 in the equimolar CaCl2-KCl molten salt and its reduction mechanism, Electrochim. Acta, 212, 162–170.
  • Wei, J. (2015). Recent advances in electrochemical detection of, RSC Adv., 5, 37440–37450.
  • Wu, S., Chandra Sekar, N., Tan, S. N., Xie, H., and Ng, S. H. (2016). Determination of chromium(III) by differential pulse stripping voltammetry at a chitosan–gold nanocomposite modified screen printed electrode, Anal. Methods, 8, 962–967.
  • Yang, J., Zhou, M., Hu, Y., and Yang, W. (2016). Cost-effective copper removal by electrosorption powered by microbial fuel cells, Bioprocess Biosyst. Eng., 39, 511–519.
  • Yao, S., Sun, S., Wang, S., and Shi, Z. (2016). Adsorptive removal of lead ion from aqueous solution by activated carbon/iron oxide magnetic composite, Indian J Chem Technol., 23, 146–152.
  • Zhang, W., Kumar, M. P. S., Srinivasan, S., and Ploehn, H. J. (1995). AC impedance studies on metal hydride electrodes AC impedance studies on metal hydride electrodes, J. Electrochem. Soc., 142, 2935–2943.
  • Zhang, X. F., Wang, B., Yu, J., Wu, X. N., Zang, Y. H., Gao, H. C., Su, P. C., and Hao, S. Q. (2018). Three-dimensional honeycomb-like porous carbon derived from corncob for the removal of heavy metals from water by capacitive deionization, RSC Adv., 8, 1159–1167.

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.