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Review Articles

High surface area microporous activated carbon from Pisum sativum peels for hexavalent chromium removal from aquatic environment

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Pages 639-649 | Received 06 Dec 2020, Accepted 22 Mar 2021, Published online: 03 May 2021

References

  • Abdelwahab, O., et al., 2007. Mass-transfer processes of chromium(VI) adsorption onto guava seeds. Chemistry and ecology, 23 (1), 73–85.
  • Acharya, J., et al., 2009. Removal of chromium(VI) from wastewater by activated carbon developed from Tamarind wood activated with zinc chloride. Chemical engineering journal, 150 (1), 25–39.
  • Alemu, A., et al., 2018. Removal of chromium (VI) from aqueous solution using vesicular basalt: a potential low cost wastewater treatment system. Heliyon, 4 (7), e00682.
  • AL-Othman, Z.A., et al., 2012. Hexavalent chromium removal from aqueous medium by activated carbon prepared from peanut shell: adsorption kinetics, equilibrium and thermodynamic studies. Chemical engineering journal, 184, 238–247.
  • AL-Othman, Z.A., et al., 2013. Kinetic, equilibrium isotherm and thermodynamic studies of Cr(VI) adsorption onto low-cost adsorbent developed from peanut shell activated with phosphoric acid. Environmental science and pollution research, 20, 3351–3365.
  • Amuda, O.S., et al., 2009. Kinetics and equilibrium studies of adsorption of chromium(VI) ion from industrial wastewater using Chrysophyllum albidum (Sapotaceae) seed shells. Colloids and surfaces. B, biointerfaces, 68 (2), 184–192.
  • Anandkumar, J., and Mandal, B., 2009. Removal of Cr(VI) from aqueous solution using Bael fruit (Aegle marmelos correa) shell as an adsorbent. Journal of hazardous materials, 168 (2–3), 633–640.
  • Anwar, J., et al., 2010. Removal of chromium from water using pea waste - a green approach. Green chemistry letters and reviews, 3 (3), 239–243.
  • Babu, C.R., et al., 2004. Removal of toxic chromium(VI) by the adsorption of activated carbons prepared from mahua shells. Asian journal of chemistry, 16 (2), 617–622.
  • Bhanvase, B.A., et al., eds. 2018. Novel water treatment and separation methods. USA: Apple Academic Press Inc, 1–336.
  • Devi, N.,R., et al., 2010. Removal of hexavalent chromium from aqueous solution using an eco-friendly activated carbon adsorbent. Advances in applied science research, 1 (3), 247–254.
  • Eleryan, A., et al., 2020. Feasible and eco-friendly removal of hexavalent chromium toxicant from aqueous solutions using chemically modified sugarcane bagasse cellulose. Toxin reviews. doi:https://doi.org/10.1080/15569543.2020.1790606
  • El Nemr, A., 2007. Pomegranate husk as an adsorbent in the removal of toxicchromium from wastewater. Chemistry and ecology, 23 (5), 409–425.
  • El Nemr, A., 2009. Potential of pomegranate husk carbon for Cr(VI) removal from wastewater: kinetic and isotherm studies. Journal of hazardous materials, 161 (1), 132–141.
  • El Nemr, A., et al., 2008. Treatment of wastewater containing toxic chromium using new activated carbon developed from date palm seed. Journal of hazardous materials, 152 (1), 263–275.
  • El Nemr, A., et al., 2010. Modeling of adsorption isotherms of methylene blue onto rice husk activated carbon. Egyptian journal of aquatic research, 36 (3), 403–425.
  • El-Sikaily, A., et al., 2007. Removal of toxic chromium from wastewater using green alga Ulva lactuca and its activated carbon. Journal of hazardous materials, 148 (1–2), 216–228.
  • Freundlich, H.M.F., 1916. Uber die adsorption in losungen. Zeitschrift fur physikalische chemie (Leipzig), 57, A, 385–470.
  • Geçgel, Ü., et al., 2013. Removal of methylene blue from aqueous solution by activated carbon prepared from pea shells (Pisum sativum). Journal of chemistry, 2013, 1–9.
  • Guo, H., et al., 2018. Camellia oleifera seed shell carbon as an efficient renewable bio-adsorbent for the adsorption removal of hexavalent chromium and methylene blue from aqueous solution. Journal of molecular liquids, 249, 629–636.
  • Ho, Y.S., et al., 2000. Study of the sorption of divalent metal ions on to peat. Adsorption science & technology, 18 (7), 639–650.
  • Jain, M., et al., 2010. Adsorption of hexavalent chromium from aqueous medium onto carbonaceous adsorbents prepared from waste biomass. Journal of environmental management, 91 (4), 949–957.
  • Khan, T., et al., 2016. Cr(VI) adsorption from aqueous solution by an agricultural waste based carbon. RSC advances, 6 (61), 56365–56374.
  • Khemmari, F., and Benrachedi, K., 2020. Valorization of peach stones to high efficient activated carbon: synthesis, characterization, and application for Cr(VI) removal from aqueous medium. Energy sources, part A: recovery, utilization, and environmental effects, 42 (6), 688–699.
  • Kumar, A., and Jena, H.M., 2017. Adsorption of Cr(VI) from aqueous phase by high surface area activated carbon prepared by chemical activation with ZnCl2. Process safety and environmental protection, 109, 63–71.
  • Labied, R., et al., 2018. Adsorption of hexavalent chromium by activated carbon obtained from a waste lignocellulosic material (Ziziphus jujuba cores): kinetic, equilibrium, and thermodynamic study. Adsorption science & technology, 0 (0), 1–34.
  • Lagergren, S., 1898. About the theory of so-called adsorption of soluble substances. Kungliga avenska vetenskapsakademiens handlingar, 24 (4), 1–39.
  • Liu, J., et al., 2018. Preparation of high surface area oxidized activated carbon from peanut shell and application for the removal of organic pollutants and heavy metal ions. Water, air, & soil pollution, 229 (12), 391.
  • Nejadshafiee, V., and Islami, M.R., 2020. Intelligent-activated carbon prepared from pistachio shells precursor for effective adsorption of heavy metals from industrial waste of copper mine. Environmental science and pollution research international, 27 (2), 1625–1639.
  • Niazi, L., et al., 2018. Chestnut oak shells activated carbon: preparation, characterization and application for Cr (VI) removal from dilute aqueous solutions. Journal of cleaner production, 185, 554–561.
  • Norouzi, S., et al., 2018. Preparation, characterization and Cr(VI) adsorption evaluation of NaOH-activated carbon produced from Date Press Cake; an agro-industrial waste. Bioresource technology, 258, 48–56.
  • Owalude, S.O., and Tella, A.C., 2016. Removal of hexavalent chromium from aqueous solutions by adsorption on modified groundnut hull. Beni-Suef university journal of basic and applied sciences, 5 (4), 377–388.
  • Rahim, M., and Haris, M.R., 2019. Chromium (VI) removal from neutral aqueous media using banana trunk fibers (BTF)‑reinforced chitosan‑based film, in comparison with BTF, chitosan, chitin and activated carbon. SN applied sciences, 1 (10), 1180.
  • Rai, M.K., et al., 2016. Removal of hexavalent chromium Cr (VI) using activated carbon prepared from mango kernel activated with H3PO4. Resource-efficient technologies, 2, S63–S70.
  • Rai, M.K., et al., 2018. Adsorption of hexavalent chromium from aqueous solution by activated carbon prepared from almond shell: kinetics, equilibrium and thermodynamics study. Journal of water supply: research and technology-aqua, 67 (8), 724–737.
  • Shakya, A., and Agarwal, T., 2018. Green pea pod biochar as a low-cost adsorbent: an alternative approach for the removal of Cr (VI) from aqueous solution. International journal of pure & applied bioscience, 6 (4), 375–386.
  • Sharma, P.K., et al., 2019. The cost analysis and economic feasibility of agro wastes to adsorb chromium (VI) from wastewater. International journal of civil engineering and technology, 10 (2), 2387–2402.
  • Shawabkeh, R.A., 2006. Adsorption of chromium ions from aqueous solution by using activated carbo-aluminosilicate material from oil shale. Journal of colloid and interface Science, 299 (2), 530–536.
  • Sparks, D.L., 1986. Kinetics of reaction in pure and mixed systems. In: D. Sparks, ed. Soil physical chemistry. Boca Raton, FL: CRC Press.
  • Srinivasan, K., et al., 1988. Studies on chromium removal by rice husk carbon. Indian journal of environmental health, 30 (4), 376–387.
  • Tempkin, M.J., and Pyzhev, V., 1940. Kinetics of ammonia synthesis on promoted iron catalysts. Acta physicochim URSS, 12, 217–222.
  • Thamilarasu, P., et al., 2013. Kinetic, equilibrium and thermodynamic studies on removal of Cr(VI) by activated carbon prepared from Ricinus communis seed shell. The Canadian journal of chemical engineering, 91 (1), 9–18.
  • Tu, B., et al., 2020. Efficient removal of aqueous hexavalent chromium by activated carbon derived from Bermuda grass. Journal of colloid and interface science, 560, 649–658.
  • Wang, Y., et al., 2016. Removal of Cr(VI) from aqueous solution using Fe-modified activated carbon prepared from luffa sponge: kinetic, thermodynamic, and isotherm studies. Desalination and water treatment, 2016, 1–12.
  • Xie, R., et al., 2013. Walnut shell-based activated carbon with excellent copper (II) adsorption and lower chromium (VI) removal prepared by acid–base modification. Environmental progress & sustainable energy, 32 (3), 688–696.
  • Yusuff, A.S., 2018. Optimization of adsorption of Cr(VI) from aqueous solution by Leucaena leucocephala seed shell activated carbon using design of experiment. Applied water science, 8 (8), 232.
  • Zhang, J., et al., 2014. Preparation and characterization of activated carbons from peanut shell and rice bran and a comparative study for Cr(VI) removal from aqueous solution. Water, air, & soil pollution, 225 (7), 2032.
  • Zicheng, Y., et al., 2013. Removal of Cr(VI) from aqueous solution using activated carbon prepared from several agriculture by-products. Advanced materials research, 807–809, 582–590.

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