793
Views
14
CrossRef citations to date
0
Altmetric
Articles

Adsorption performance of activated carbon synthesis by ZnCl2, KOH, H3PO4 with different activation temperatures from mixed fruit seeds

ORCID Icon
Pages 1417-1435 | Received 21 May 2021, Accepted 05 Aug 2021, Published online: 29 Aug 2021

References

  • Vilardi G, Ochando-Pulido JM, Verdone N, et al. On the removal of hexavalent chromium by olive stones coated by iron-based nanoparticles: equilibrium study and chromium recovery. J Clean Prod. 2018;190:200–210.
  • Yin L, Song S, Wang X, et al. Rationally designed core-shell and yolk-shell magnetic titanate nanosheets for efficient U (VI) adsorption performance. Environ Pollut. 2018;238:725–738.
  • Yu S, Liu Y, Ai Y, et al. Rational design of carbonaceous nanofiber/Ni-Al layered double hydroxide nanocomposites for high-efficiency removal of heavy metals from aqueous solutions. Environ Pollut. 2018;242:1–11.
  • Wang X, Liu Y, Pang H, et al. Effect of graphene oxide surface modification on the elimination of Co (II) from aqueous solutions. Chem Eng J. 2018;344:380–390.
  • Zhang C, Li X, Chen Z, et al. Synthesis of ordered mesoporous carbonaceous materials and their highly efficient capture of uranium from solutions. Sci China Chem. 2018;61:281–293.
  • Zou Y, Wang X, Khan A, et al. Environmental remediation and application of nanoscale zero-valent iron and its composites for the removal of heavy metal ions: a review. Environ Sci Technol. 2016;50:7290–7304.
  • Wu Y, Pang H, Liu Y, et al. Environmental remediation of heavy metal ions by novel-nanomaterials: a review. Environ Pollut. 2019;246:608–620.
  • Kamaraj R, Vasudevan S. Decontamination of selenate from aqueous solution by oxidized multi-walled carbon nanotubes. Powder Technol. 2015;274:268–275.
  • Verlicchi P, Galletti A, Petrovic M, et al. Hospital effluents as a source of emerging pollutants: an overview of micropollutants and sustainable treatment options. J Hydrol. 2010;389:416–428.
  • Malakootian M, Mahdizadeh H, Nasiri A, et al. Investigation of the efficiency of microbial desalination cell in removal of arsenic from aqueous solutions. Desalination. 2018;438:19–23.
  • Rodiguez MH, Yperman J, Carleer R, et al. Adsorption of Ni (II) on spent coffee and coffee husk based activated carbon. J Environ Chem Eng. 2018;6:1161–1170.
  • Cao B, Yan L, Ma J, et al. Comparison of serum essential trace metals between patients with schizophrenia and healthy controls. J Trace Elem Med Biol. 2019;51:79–85.
  • Shekhawat K, Chatterjee S, Joshi B. Chromium toxicity and its health hazards. Int J Adv Res. 2015;3:167–172.
  • Fu F, Wang Q. Removal of heavy metal ions from wastewaters: a review. J Environ Manag. 2011;92:407–418.
  • Song S, Zhang S, Huang S, et al. A novel multi-shelled Fe3O4@ MnOx hollow microspheres for immobilizing U (VI) and Eu (III). Chem Eng J. 2019;355:697–709.
  • Yu S, Wang X, Tan X, et al. Sorption of radionuclides from aqueous systems onto graphene oxide-based materials: a review. Inorg Chem Front. 2015;2:593–612.
  • Neeraj G, Krishnan S, Kumar PS, et al. Performance study on sequestration of copper ions from contaminated water using newly synthesized high effective chitosan coated magnetic nanoparticles. J Mol Liq. 2016;214:335–346.
  • Mikušová V, Lukačovičová O, Havránek E, et al. Radionuclide X-ray fluorescence analysis of selected elements in drug samples with 8-hydroxyquinoline preconcentration. J Radioanal Nucl Chem. 2014;299:1645–1652.
  • Radchenko V, Engle JW, Wilson JJ, et al. Application of ion exchange and extraction chromatography to the separation of actinium from proton-irradiated thorium metal for analytical purposes. J Chromatogr A. 2015;1380:55–63.
  • Huang R, McPhedran KN, Sun N, et al. Investigation of the impact of organic solvent type and solution pH on the extraction efficiency of naphthenic acids from oil sands process-affected water. Chemosphere. 2016;146:472–477.
  • Kamaraj R, Ganesan P, Lakshmi J, et al. Removal of copper from water by electrocoagulation process – effect of alternating current (AC) and direct current (DC). Environ Sci Pollut Res. 2013;20:399–412.
  • Vasudevan S, Lakshmi J, Sozhan G. Studies on the Al–Zn–In-alloy as anode material for the removal of chromium from drinking water in electrocoagulation process. Desalination. 2011;275:260–268.
  • Vasudevan S, Lakshmi J. Process conditions and kinetics for the removal of copper from water by electrocoagulation. Environ Eng Sci. 2012;29:563–572.
  • Vasudevan S, Lakshmi J, Sozhan G. Optimization of electrocoagulation process for the simultaneous removal of mercury, lead, and nickel from contaminated water. Environ Sci Pollut Res. 2012;19:2734–2744.
  • Ganesan P, Kamaraj R, Vasudevan S. Application of isotherm, kinetic and thermodynamic models for the adsorption of nitrate ions on graphene from aqueous solution. J Taiwan Inst Chem Eng. 2013;44:808–814.
  • Zhu F, Zheng Y-M, Zhang B-G, et al. A critical review on the electrospun nanofibrous membranes for the adsorption of heavy metals in water treatment. J Hazard Mater. 2020; 401: 123608.
  • Ganesan P, Kamaraj R, Sozhan G, et al. Oxidized multiwalled carbon nanotubes as adsorbent for the removal of manganese from aqueous solution. Environ Sci Pollut Res. 2013;20:987–996.
  • Mahvi A, Malakootian M, Heidari M. Comparison of polyaluminum silicate chloride and electrocoagulation process, in natural organic matter removal from surface water in Ghochan, Iran. J Water Chem Technol. 2011;33:377–385.
  • Sharifpour H, Javid N, Malakootian M. Investigation of single-walled carbon nanotubes in removal of Penicillin G (Benzyl penicillin sodium) from aqueous environments. Desalin Water Treat. 2018;124:248–55.
  • Alslaibi T, Abustan I, Ahmad M, et al. Comparison of agricultural by-products activated carbon production methods using surface area response. Caspian J Appl Sci Res. 2013;2:18–27.
  • Ioannidou O, Zabaniotou A. Agricultural residues as precursors for activated carbon production – a review. Renew Sustain Energy Rev. 2007;11:1966–2005.
  • Kalderis D, Koutoulakis D, Paraskeva P, et al. Adsorption of polluting substances on activated carbons prepared from rice husk and sugarcane bagasse. Chem Eng J. 2008;144:42–50.
  • Kula I, Uğurlu M, Karaoğlu H, et al. Adsorption of Cd (II) ions from aqueous solutions using activated carbon prepared from olive stone by ZnCl2 activation. Bioresour Technol. 2008;99:492–501.
  • Yahaya N, Latiff M, Abustan I, et al. Effect of preparation conditions of activated carbon prepared from rice husk by ZnCl2 activation for removal of Cu (II) from aqueous solution. Int J Eng Technol. 2010;10:27–31.
  • Somayajula A, Aziz AA, Saravanan P, et al. Adsorption of mercury (II) ion from aqueous solution using low-cost activated carbon prepared from mango kernel. Asia-Pacific J Chem Eng. 2013;8:1–10.
  • El-Hendawy A-NA, Alexander AJ, Andrews RJ, et al. Effects of activation schemes on porous, surface and thermal properties of activated carbons prepared from cotton stalks. J Anal Appl Pyrolysis. 2008;82:272–278.
  • Erdoğan S, Önal Y, Akmil-Başar C, et al. Optimization of nickel adsorption from aqueous solution by using activated carbon prepared from waste apricot by chemical activation. Appl Surf Sci. 2005;252:1324–1331.
  • Pandiarajan A, Kamaraj R, Vasudevan S, et al. OPAC (orange peel activated carbon) derived from waste orange peel for the adsorption of chlorophenoxyacetic acid herbicides from water: adsorption isotherm, kinetic modelling and thermodynamic studies. Bioresour Technol. 2018;261:329–341.
  • Plaza M, Pevida C, Martín CF, et al. Developing almond shell-derived activated carbons as CO2 adsorbents. Sep Purif Technol. 2010;71:102–106.
  • Sandesh K, Suresh Kumar R, JagadeeshBabu P. Rapid removal of cobalt (II) from aqueous solution using cuttlefish bones; equilibrium, kinetics, and thermodynamic study. Asia-Pacific J Chem Eng. 2013;8:144–153.
  • Zare-Dorabei R, Ferdowsi SM, Barzin A, et al. Highly efficient simultaneous ultrasonic-assisted adsorption of Pb (II), Cd (II), Ni (II) and Cu (II) ions from aqueous solutions by graphene oxide modified with 2, 2′-dipyridylamine: central composite design optimization. Ultrason Sonochemistry. 2016;32:265–276.
  • Fung P, Cheung W, McKay G. Systematic analysis of carbon dioxide activation of waste tire by factorial design. Chin J Chem Eng. 2012;20:497–504.
  • Kılıçel F, Karapınar HS. Preparation and characterization of activated carbon produced from eriobotrya japonica seed by chemical activation with ZnCl2. Asian J Chem. 2018;30(8):1823–1828.
  • Ahmadpour A, Do D. The preparation of active carbons from coal by chemical and physical activation. Carbon. 1996;34:471–479.
  • Tay T, Ucar S, Karagöz S. Preparation and characterization of activated carbon from waste biomass. J Hazard Mater. 2009;165:481–485.
  • Salman J, Hameed B. Effect of preparation conditions of oil palm fronds activated carbon on adsorption of bentazon from aqueous solutions. J Hazard Mater. 2010;175:133–137.
  • Sarici-Özdemir Ç. Removal of methylene blue by activated carbon prepared from waste in a fixed-bed column. Part Sci Technol. 2014;32:311–318.
  • Samsuri AW, Sadegh-Zadeh F, Seh-Bardan BJ. Adsorption of As (III) and As (V) by Fe coated biochars and biochars produced from empty fruit bunch and rice husk. J Environ Chem Eng. 2013;1:981–988.
  • Al-Saadi AA, Saleh TA, Gupta VK. Spectroscopic and computational evaluation of cadmium adsorption using activated carbon produced from rubber tires. J Mol Liq. 2013;188:136–142.
  • Li Z, Li J, Wang Y, et al. Synthesis and application of surface-imprinted activated carbon sorbent for solid-phase extraction and determination of copper (II). Spectrochim Acta A: Mol Biomol Spectrosc. 2014;117:422–427.
  • Akar ST, Arslan D, Alp T. Ammonium pyrrolidine dithiocarbamate anchored Symphoricarpus albus biomass for lead (II) removal: batch and column biosorption study. J Hazard Mater. 2012;227:107–117.
  • Demiral I, Samdan CA, Demiral H. Kinetics and equilibrium adsorption study of lead (II) onto activated carbon prepared from pumpkin seed shell. FEB-Fresenius Environ Bull. 2017: 26: 4484.
  • Kalyani P, Anitha A. Refuse derived energy-tea derived boric acid activated carbon as an electrode material for electrochemical capacitors. Port Electrochim Acta. 2013;31:165–174.
  • Torres J, Nogueira F, Silva M, et al. Novel eco-friendly biocatalyst: soybean peroxidase immobilized onto activated carbon obtained from agricultural waste. RSC Adv. 2017;7:16460–16466.
  • Boukmouche N, Azzouz N, Bouchama L, et al. Activated carbon derived from marine Posidonia Oceanica for electric energy storage. Arab J Chem. 2014;7:347–354.
  • Xu J, Chen L, Qu H, et al. Preparation and characterization of activated carbon from reedy grass leaves by chemical activation with H3PO4. Appl Surf Sci. 2014;320:674–680.
  • Bakti AI, Gareso PL. Characterization of active carbon prepared from coconuts shells using FTIR, XRD and SEM techniques. J Ilm Pendidik Fis Al-Biruni. 2018;7:33–39.
  • Rajbhandari R, Shrestha LK, Pradhananga RR. Nanoporous activated carbon derived from Lapsi (Choerospondias Axillaris) seed stone for the removal of arsenic from water. J Nanosci Nanotechnol. 2012;12:7002–7009.
  • Dhawane SH, Kumar T, Halder G. Central composite design approach towards optimization of flamboyant pods derived steam activated carbon for its use as heterogeneous catalyst in transesterification of Hevea brasiliensis oil. Energy Convers Manag. 2015;100:277–287.
  • Sayed A, Gomaa H, Hamam M, et al. A novel fluorescent sensor for fast and highly selective turn-off detection of Fe3+ in water and pharmaceutical samples using synthesized azopyrazole-benzenesulfonamide derivative. J Mol Struct. 2020;1225: 129175.
  • Melquiades F, Parreira P, Yabe M, et al. Factorial design for Fe, Cu, Zn, Se and Pb preconcentration optimization with APDC and analysis with a portable X-ray fluorescence system. Talanta. 2007;73:121–126.
  • de la Calle I, Ruibal T, Lavilla I, et al. Direct immersion thin-film microextraction method based on the sorption of pyrrolidine dithiocarbamate metal chelates onto graphene membranes followed by total reflection X-ray fluorescence analysis. Spectrochim Acta B: At Spectrosc. 2019;152:14–24.
  • Daorattanachai P, Unob F, Imyim A. Multi-element preconcentration of heavy metal ions from aqueous solution by APDC impregnated activated carbon. Talanta. 2005;67:59–64.
  • Duran C, Senturk HB, Elci L, et al. Simultaneous preconcentration of Co (II), Ni (II), Cu (II), and Cd (II) from environmental samples on Amberlite XAD-2000 column and determination by FAAS. J Hazard Mater. 2009;162:292–299.
  • Xu D, Tan X, Chen C, et al. Adsorption of Pb (II) from aqueous solution to MX-80 bentonite: effect of pH, ionic strength, foreign ions and temperature. Appl Clay Sci. 2008;41:37–46.
  • Saleh TA, Tuzen M, Sarı A. Polyethylenimine modified activated carbon as novel magnetic adsorbent for the removal of uranium from aqueous solution. Chem Eng Res Des. 2017;117:218–227.
  • Wang J, Lu X, Ng PF, et al. Polyethylenimine coated bacterial cellulose nanofiber membrane and application as adsorbent and catalyst. J Colloid Interface Sci. 2015;440:32–38.
  • Annadurai G, Ling LY, Lee J-F. Adsorption of reactive dye from an aqueous solution by chitosan: isotherm, kinetic and thermodynamic analysis. J Hazard Mater. 2008;152:337–346.
  • Fernandez E, Hugi-Cleary D, López-Ramón MV, et al. Adsorption of phenol from dilute and concentrated aqueous solutions by activated carbons. Langmuir. 2003;19:9719–9723.
  • Taghipour T, Karimipour G, Ghaedi M, et al. Mild synthesis of a Zn (II) metal organic polymer and its hybrid with activated carbon: application as antibacterial agent and in water treatment by using sonochemistry: optimization, kinetic and isotherm study. Ultrason Sonochemistry. 2018;41:389–396.
  • Çimen A, Torun M, Bilgiç A. Immobilization of 4-amino-2-hydroxyacetophenone onto silica gel surface and sorption studies of Cu (II), Ni (II), and Co (II) ions. Desalin Water Treat. 2015;53:2106–2116.
  • Vasudevan S, Lakshmi J, Sozhan G. Optimization of the process parameters for the removal of phosphate from drinking water by electrocoagulation. Desalin Water Treat. 2009;12:407–414.
  • Karapinar HS, Kilicel F, Ozel F, et al. Fast and effective removal of Pb (II), Cu (II) and Ni (II) ions from aqueous solutions with TiO2 nanofibers: synthesis, adsorption-desorption process and kinetic studies. Int J Environ Anal Chem. 2021: 1–21.
  • Nejadshafiee V, Islami MR. Adsorption capacity of heavy metal ions using sultone-modified magnetic activated carbon as a bio-adsorbent. Mater Sci Eng: C. 2019;101:42–52.
  • Kamaraj R, Vasudevan S. Facile one-pot synthesis of nano-zinc hydroxide by electro-dissolution of zinc as a sacrificial anode and the application for adsorption of Th 4+, U 4+, and Ce 4+ from aqueous solution. Res Chem Intermed. 2016;42:4077–4095.
  • Vasudevan S, Lakshmi J, Kamaraj R, et al. A critical study on the removal of copper by an electrochemically assisted coagulation: equilibrium, kinetics, and thermodynamics. Asia-Pacific J Chem Eng. 2013;8:162–171.
  • Vasudevan S, Lakshmi J. Studies relating to an electrochemically assisted coagulation for the removal of chromium from water using zinc anode. Water Sci Technol: Water Supply. 2011;11:142-150.
  • Abbas M. Modeling of adsorption isotherms of heavy metals onto Apricot stone activated carbon: Two-parameter models and equations allowing determination of thermodynamic parameters. Mater Today: Proc. 2020;43: 3359–3364.
  • Harrache Z, Abbas M, Aksil T, et al. Modeling of adsorption isotherms of (5, 5’-disodium indigo sulfonate) from aqueous solution onto activated carbon: equilibrium, thermodynamic studies, and error analysis. Desalin Water Treat. 2019;147:273–283.
  • Kamaraj R, Pandiarajan A, Gandhi MR, et al. Eco-friendly and easily prepared graphenenanosheets for safe drinking water: removal of chlorophenoxyacetic acid herbicides. ChemistrySelect. 2017;2:342–355.
  • Mahdavi S, Jalali M, Afkhami A. Heavy metals removal from aqueous solutions using TiO2, MgO, and Al2O3 nanoparticles. Chem Eng Commun. 2013;200:448–470.
  • Kocabaş-Ataklı ZÖ, Yürüm Y. Synthesis and characterization of anatase nanoadsorbent and application in removal of lead, copper and arsenic from water. Chem Eng J. 2013;225:625–635.
  • Zhong L-x, Peng X-w, Yang D, et al. Adsorption of heavy metals by a porous bioadsorbent from lignocellulosic biomass reconstructed in an ionic liquid. J Agric Food Chem. 2012;60:5621–5628.
  • Li Y, Cao L, Li L, et al. In situ growing directional spindle TiO2 nanocrystals on cellulose fibers for enhanced Pb2+ adsorption from water. J Hazard Mater. 2015;289:140–148.
  • Mahfooz-ur-Rehman RW, Waseem M, Shah BA, et al. Fabrication of titanium–Tin oxide nanocomposite with enhanced adsorption and antimicrobial applications. J Chem Eng Data. 2019;64:2436–2444.
  • Peydayesh M, Rahbar-Kelishami A. Adsorption of methylene blue onto Platanus orientalis leaf powder: kinetic, equilibrium and thermodynamic studies. J Ind Eng Chem. 2015;21:1014–1019.
  • Mahmoodi Meimand M, Javid N, Malakootian M. Adsorption of sulfur dioxide on clinoptilolite/nano iron oxide and natural clinoptilolite. Health Scope. 2019;8: e69158.
  • Özsin G, Kılıç M, Apaydın-Varol E, et al. Chemically activated carbon production from agricultural waste of chickpea and its application for heavy metal adsorption: equilibrium, kinetic, and thermodynamic studies. Appl Water Sci. 2019;9:1–14.
  • Enniya I, Rghioui L, Jourani A. Adsorption of hexavalent chromium in aqueous solution on activated carbon prepared from apple peels. Sustain Chem Pharm. 2018;7:9–16.
  • Chan MT, Selvam A, Wong JW. Reducing nitrogen loss and salinity during ‘struvite’ food waste composting by zeolite amendment. Bioresour Technol. 2016;200:838–844.
  • Kołodyńska D, Krukowska J, Thomas P. Comparison of sorption and desorption studies of heavy metal ions from biochar and commercial active carbon. Chem Eng J. 2017;307:353–363.
  • Luo S, Xu X, Zhou G, et al. Amino siloxane oligomer-linked graphene oxide as an efficient adsorbent for removal of Pb (II) from wastewater. J Hazard Mater. 2014;274:145–155.
  • Jiang R, Wang M, Chen W. Characterization of adsorption and desorption of lawn herbicide siduron in heavy metal contaminated soils. Chemosphere. 2018;204:483–491.

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.