205
Views
11
CrossRef citations to date
0
Altmetric
Original Articles

Anoxybacillus sp. SO B1–Immobilized Amberlite XAD-16 for Solid-Phase Preconcentration of Cu(II) and Pb(II) and Their Determinations by Flame Atomic Absorption Spectrometry

, , , , , , & show all
Pages 139-150 | Published online: 29 May 2015

REFERENCES

  • Aksu, Z., G. Eğretli, and T. Kutsal. 1998. Comparative study of copper (II) biosorption of Ca-alginate, agarose and immobilized C. Vulgaris in a packed-bed column. Process. Biochem. 33:393–400.
  • Altun Anayurt, R., A. Sari, and M. Tuzen. 2009. Equilibrium, thermodynamic and kinetic studies on biosorption of Pb(II) and Cd(II) from aqueous solution by macrofungus (Lactarius scrobiculatus) biomass. Chem. Eng. J. 151:255–261.
  • Bag, H., A. R. Turker, and M. Lale. 2000. Determination of Cu, Zn, Fe, Ni and Cd by flame atomic absorption spectrophotometry after preconcentration by Escherichia coli immobilized on sepiolite. Talanta 51:1035–1043.
  • Baytak, S., and A. R. Turker. 2006. Determination of lead and nickel in environmental samples by flame atomic absorption spectrometry after column solid-phase extraction on Ambersorb-572 with EDTA. J. Hazard. Mater. 129:130–136.
  • Baytak, S., and A. R. Turker. 2005. The use of Agrobacterium tumefacients immobilized on Amberlite XAD-4 as a new biosorbent for the column preconcentration of iron(III), cobalt(II), manganese(II) and chromium(III). Talanta 65:938–945.
  • Baytak, S., A. Koçyiğit, and A. R. Türker. 2007. Determination of lead, iron and nickel in water and vegetable samples after preconcentration with Aspergillus niger loaded on silica gel. Clean 35:607–611.
  • Baytak, S., E. Kendüzler, and A. R. Türker. 2006. Separation/preconcentration of Zn(II), Cu(II) and Cd(II) by Saccharomyces carlsbergensis immobilized on silica gel 60 of some trace metals in varios samples. Sep. Sci. Technol. 41:3449–3465.
  • Bezerra, M. A., W. N. L. Dos Santos, V. A. Lemos, M. G. A. Korn, and S. L. C. Ferreira. 2007. On-line system for preconcentration and determination of metals in vegetables by inductively coupled plasma optical emission spectrometry. J. Hazard. Mater.148:334–339.
  • Burnett, P. G., C. J. Daughney, and D. Peak. 2006. Cd adsorption onto Anoxybacillus flavithermus: Surface complexation modeling and spectroscopic investigations. Geol. Cosmol. Acta 70:5253–5269.
  • Bulut, V. N., C. Duran, M. Tufekci, L. Elci, and M. Soylak. 2007. Speciation of Cr(III) and Cr(VI) after column solid phase extraction on Amberlite XAD-2010. J. Hazard. Mater. 143:112–117.
  • Chang, J. S., and J. C. Huang. 1998. Selective adsorptionyrecovery of Pb, Cu, and Cd with multiple fixed beds containing immobilised bacterial biomass. Biotechnol. Prog. 14:735–741.
  • Duran, C., A. Gundogdu, V. N. Bulut, M. Soylak, L. Elci, H. B. Senturk, and M. Tufekci. 2007. Solid-phase extraction of Mn(II), Co(II), Ni(II), Cu(II), Cd(II) and Pb(II) ions from environmental samples by flame atomic absorption spectrometry (FAAS). J. Hazard. Mater. 146:347–355.
  • De, A. K. 1996. Environmental chemistry, 3rd ed., 263. New Delhi: Taylor & Francis.
  • Diniz, M. C. T., O. F. Filho, and J. J. R. Rohwedder. 2004. An automated system for liquid–liquid extraction based on a new micro-batch extraction chamber with on-line detection Preconcentration and determination of copper(II). Anal. Chim. Acta 525:281–287.
  • Duran, C., H. B. Senturk, A. Gundogdu, V. N. Bulut, L. Elci, M. Soylak, M. Tufekci, and Y. Uygur. 2007. Determination of some trace metals in environmental samples by flame AAS following solid-phase extraction with Amberlite XAD-200 resin after complexing with 8-hydroxyquinoline. Chin. J. Chem. 25:196–202.
  • Duran, C., V. N. Bulut, A. Gundogdu, M. Soylak, A.O. Belduz, and F. S. Beris. 2009. Biosorption of heavy metals by Anoxybacillus gonensis immobilized on diaion Hp-2MG. Sep. Sci. Technol. 44:335–338.
  • Gadd, G. M. 2000. Bioremedial potential of microbial mechanisms of metal mobilization and immobilization. Curr. Opin. Biotechnol. 11:271–279.
  • Gialamouidis, D., M. Mitrakas, and M. Liakopoulou-Kyriakides. 2010. Equilibrium, thermodynamic and kinetic studies on biosorption of Mn(II) from aqueous solution by Pseudomonas sp., Staphylococcus xylosus and Blakeslea trispora cells. J. Hazard. Mater. 182:672–680.
  • Gupta, R., P. Ahuja, S. Khan, R. K. Saxena, and H. Mohapatra. 2000. Microbial biosorbents: Meeting challenges of heavy metal pollution in aqueous solutions. Curr. Sci. 78:967–973.
  • Hetzer, A., C. J. Daughney, and H. W. Morgan. 2006. Cadmium ion biosorption by the thermophilic bacteria Geobacillus stearothermophilus and G. Thermocatenulatus. Appl. Environ. Microbiol. 72:4020–4027.
  • Karatepe, A., M. Soylak, and L. Elci. 2011. Determination of Cu, Fe, and Ni in spices after preconcentration on Diaion-HP 20 resin as their zincon complexes. Clean Soil Air Water 39:502–507.
  • Lawala, O. S., A. R. Sannia, I. A. Ajayib, and O. O. Rabiua. 2010. Equilibrium, thermodynamic and kinetic studies for the biosorption of aqueous lead(II) ions onto the seed husk of Calophyllum inophyllum. J. Hazard. Mater. 177:829–835.
  • Lemos, V. A., and P. X. Baliza. 2005. Amberlite XAD-2 functionalized with 2-aminothiophenol as a new sorbent for on-line preconcentration of cadmium and copper. Talanta 67:564–570.
  • Lucon, M. O., R. A. Olsina, L. P. Ferenandez, and M. F. Silva. 2006. Determination of lead in human saliva by combined cloud point extraction–capillary zone electrophoresis with indirect UV detection. J. Hazard. Mater. 128:240–246.
  • Madigan, M. T., and B. L. Marrs. 2003. Extremophiles. Sci. Am. 276:66–71.
  • Mendil, D., M. Tuzen, and M. Soylak. 2008. MA biosorption system for metal ions on Penicillium italicum loaded on Sepabeads SP 70 prior to flame atomic absorption spectrometric determinations. J. Hazard. Mater. 152:1171–1178.
  • Mohammadi, S. Z., D. Afzali, M. A. Taher, and H. Darijani. 2010. Flame atomic absorption spectrometry determination of trace amounts of cadmium and zinc in water samples after preconcentration onto modified Amberlite XAD-4 resin. Clean Soil Air Water. 38:140–145.
  • Nakajima, A., and T. Tsuruta. 2004. Competitive biosorption of thorium and uranium by Micrococcus luteus. J. Radioanal. Nucl. Chem. 260:13–18.
  • Ozdemir, S., S. Erdogan, and E. Kilinc. 2010. Bacillus sp. immobilized on Amberlite XAD-4 resin as a biosorbent for solid phase extraction of thorium prior to UV-vis spectrometry determination. Microchim. Acta 171:275–281.
  • Ozdemir, S., R. Gul-guven, E. Kılınç, M. Dogru, and S. Erdogan. 2010. Preconcentration of cadmium and nickel using the biosorbent Geobacillus thermoleovorans subsp. Stromboliensis immobilized on Amberlite XAD-4. Microchim. Acta 169:79–85.
  • Ozdemir, S., V. Okumuş, E. Kılınç, H. Bilgetekin, A. Dündar, and B. Ziyadanoğulları. 2012. Pleurotus eryngii immobilized Amberlite XAD-16 as a solid phase biosorbent for preconcentrations Cd2+ and Co2+ and their determination by ICP-OES. Talanta 99:502–506.
  • Papageorgiou, S. K., E. P. Kouvelos, and F. K. Katsaros. 2008. Calcium alginate beads from Laminaria digitata for the removal of Cu+2 and Cd+2 from dilute aqueous metal solutions. Desalination 224:293–306.
  • Robles, L. C., and A. J. Aller. 1995. Determination of cadmium in biological and environmental samples by slurry electrothermal atomic absorption spectrometry. Talanta 42:1731–1744.
  • Şahan, S., and U. Şahin. 2010. Determination of copper(II) using atomic absorption spectrometry and Eriochrome Blue Black R loaded Amberlite XAD-1180 resin. Clean Soil Air Water 38:485–491.
  • Shunxin, L., Q. Shahua, H. Ganquan, and H. Fei. 1999. Separation/preconcentration of Zn(II), Cu(II) and Cd(II) by Saccharomyces carlsbergensis immobilized on silica gel 60 of some trace metals in various samples. Fresenius J. Anal. Chem. 365:469–471.
  • Singh, B. N., and B. Maiti. 2006. Separation and preconcentration of U(VI) on XAD-4 modified with 8-hydroxy quinoline. Talanta 69:393–396.
  • Smichowski, P., J. Marrero, A. Ladesma, G. Polla, and D. A. Batisoni. 2000. Speciation of As(III) and As(V) in aqueous solutions using baker's yeast and hydride generation inductively coupled plasma atomic emission spectrometric determination, J. Anal. Atom. Specrom. 15:1493–1497.
  • Soylak, M., B. Kaya, and M. Tuzen. 2007. Copper(II)-8-hydroxquinoline coprecipitation system for preconcentration and separation of cobalt(II) and manganese(II) in real samples. J. Hazard. Mater. 147:832–837.
  • Soylak, M., A. Kars, and I. Narin. 2008. Coprecipitation of Ni2+, Cd2+ and Pb2+ for preconcentration in environmental samples prior to flame atomic absorption spectrometric determinations. J. Hazard. Mater. 159:435–439.
  • Suharso, Buhani, and Sumadi. 2010. Immobilization of S. duplicatum supported silica gel matrix and its application on adsorption–desorption of Cu (II), Cd (II) and Pb (II) ions. Desalination 263:64–69.
  • Turker, A. R. 2007. New sorbents for solid-phase extraction for metal enrichment. Clean 35:548–557.
  • Tuzen, M., K. O. Saygi, C. Usta, and M. Soylak. 2008. Pseudomonas aeruginosa immobilized multiwalled carbon nanotubes as biosorbent for heavy metal ions. Bioresour. Technol. 99:1563–1570.
  • Tuzen, M., O. D. Uluozlu, C. Usta, and M. Soylak. 2007. Biosorption of copper(II), lead(II), iron(III) and cobalt(II) on Bacillus sphaericus-loaded Diaion SP-850 resin. Anal. Chim. Acta 581:241–246.
  • Tuzen, M., E. Melek, and M. Soylak. 2008. Solid-phase extraction of copper, iron and zincions Bacillus thuringiensis israelensis loaded on Dowex optipore V-493. J. Hazard. Mater. 159:335–341.
  • Van de Burg, B. 2003. Extremophiles as a source for novel enzymes. Curr Opin. Microbiol. 6:213–218.
  • Varhan Oral, E., I. Dolak, H. Temel, and B. Ziyadanogullari. 2011. Preconcentration and determination of copper and cadmium ions with 1,6-bis(2-carboxy aldehyde phenoxy)butane functionalized Amberlite XAD-16 by flame atomic absorption spectrometry. J. Hazard. Mater. 186:724–730.
  • Wang, Q., X. Chang, D. Li, Z. Hu, R. Li, and Q. Hea. 2011. Adsorption of chromium(III), mercury(II) and lead(II) ions onto 4-aminoantipyrine immobilized bentonite. J. Hazard. Mater. 186:1076–1081.

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.