References

  1. B.S. Girgis, S.S. Yunis, A.M. Soliman, Characteristics of activated carbon from peanut hulls in relation to conditions of preparation, Mater. Lett., 57 ( 2002) 164–172.
  2. L. Daza, S. Mendioroz, J.A. Pajares, Preparation of Rh/active carbon catalysts by adsorption in organic media, Carbon 24 (1986) 33–41.
  3. PL Walker Jr. , Chemistry and Physics of Carbon, vol. 1, Marcel Dekker Inc., New York, 1965, pp. 121–202.
  4. R. DiPanfilo, N.O. Egiebor, Activated carbon production from synthetic crude coke, Fuel Process. Technol., 46 (1996) 157–169.
  5. C.J. Kirubakaran, K. Krishnaiah, S.K. Seshadri, Experimental study of the production of activated carbon from coconut shells in a fluidized bed reactor. Ind. Eng. Chem. Res., 30 (1991) 2411– 2416, doi: 10.1021/ie00059a008.
  6. H. Benaddi, J.N. Rouzaud, J. Conard, D. Legras, F. Beguin, Influence of the atmosphere in the chemical activation of wood by phosphoric acid, Carbon, 36 (1998) 306–309.
  7. M.J. Mazzetti, F. Derbyshire, Activated carbons from yellow poplar and white oak by H3PO4 activation, Carbon, 36 (1998) 1085–1097.
  8. F. Rodríguez-Reinoso, J. Garrido, J.M. Martín-Martínez, M. Molina-Sabio, R. Torregrosa, The combined use of different approaches in the characterization of microporous carbons, Carbon: Proceedings of the Conference on Porosity and Carbon materials: Measurements and applications 27 (1989) 23–32.
  9. C.A. Toles, W.E. Marshall, M.M. Johns, L.H. Wartelle, A. McAloon, Acid-activated carbons from almond shells: physical, chemical and adsorptive properties and estimated cost of production, Bioresour. Technol., 71 (2000) 87–92.
  10. T.T. Al-Khalid, N.M. Haimour, S.A. Sayed, B.A. Akash, Activation of olive-seed waste residue using CO2 in a fluidized-bed reactor, Fuel Process. Technol., 57 (1998) 55–64.
  11. A. Baçaoui, A. Yaacoubi, A. Dahbi, C. Bennouna, R. Phan Tan Luu, F.J. Maldonado-Hodar, J. Rivera-Utrilla, C. Moreno- Castilla, Optimization of conditions for the preparation of activated carbons from olive-waste cakes, Carbon, 39 (2001) 425–432.
  12. R.A. Shawabkeh, D.A. Rockstraw, R.K. Bhada, Copper and strontium adsorption by a novel carbon material manufactured from pecan shells, Carbon, 40 (2002) 781–786.
  13. R.R. Bansode, J.N. Losso, W.E. Marshall, R.M. Rao, R.J. Portier, Adsorption of volatile organic compounds by pecan shelland almond shell-based granular activated carbons, Bioresour. Technol., 90 (2003) 175–184.
  14. S.A. Dastgheib, D.A. Rockstraw, A model for the adsorption of single metal ion solutes in aqueous solution onto activated carbon produced from pecan shells, Carbon, 40 (2002) 1843–1851.
  15. C.A. Toles, W.E. Marshall, M.M. Johns, Phosphoric acid activation of nutshells for metals and organic remediation: Process optimization, J. Chem. Technol. Biotechnol., 72 (1998) 255–263.
  16. M.A. Abdi, M. Mahdiarfar, A. Jalilian, A. Ahmadpour, A.R. Mirhabibi, Preparation of carbon molecular sieve from a new natural source, International Conference on Carbon, Lexington, United States 7 (2001) 14–19.
  17. W.T. Tsai, C.Y. Chang, S.Y. Wang, C.F. Chang, S.F. Chien, H.F. Sun, Utilization of agricultural waste corn COB for the preparation of carbon adsorbent, J. Environ. Sci. Health B., 36 (2001) 677–686.
  18. C.C. Wu, W.P. Walawender, L.T. Fan, Chemical agents for production of activated carbons from extrusion cooked grain products, Carbon: Proceedings 1997, 23rd Biennial Conference on Carbon, University Park 7 (1997) 18–23.
  19. A. Ahmadpour, D.D. Do, The preparation of active carbons from coal by chemical and physical activation, Carbon, 34 (1996) 471–479.
  20. A. Ahmadpour, D.D. Do, The preparation of activated carbon from macadamia nutshell by chemical activation, Carbon, 35 (1997) 1723–1732.
  21. M. Molina-Sabio, F. RodRíguez-Reinoso, F. Caturla, M.J. Sellés, Porosity in granular carbons activated with phosphoric acid, Carbon, 33 (1995) 1105–1113.
  22. J. Hayashi, A. Kazehaya, K. Muroyama, A.P. Watkinson, Preparation of activated carbon from lignin by chemical activation, Carbon, 38 (2000) 1873–1878.
  23. V.L. Snoeyink, M.T. Suidan, T. Makram, Dechlorination by activated carbon and other reducing agents, In: J.D. Johnson, Disinfection: water and wastewater. Ann Arbor, Ann Arbor Science (1975) 339–58.
  24. R. Potwora, Chlorine and Chloramine Removal with Activated Carbon, Water Conditioning & Purification (WCP) June 2009. http://www.wcponline.com/pdf/Potwora.pdf.
  25. F. Caturla, M. Molina-Sabio, F. Rodríguez-Reinoso, Preparation of activated carbon by chemical activation with ZnCl2, Carbon, 29 (1991) 999–1007.
  26. M. Jagtoyen, F. Derbyshire, Activated carbons from yellow poplar and white oak by H3PO4 activation, Carbon, 36 (1998) 1085–1097.
  27. S.A. Dastgheib, D.A. Rockstraw, Pecan shell activated carbon: synthesis, characterization, and application for the removal of copper from aqueous solution, Carbon, 39 (2001) 1849–1855.
  28. S. Labruquere, R. Pailler, X. Bourrat, R. Naslain, Enhancement of the oxidation resistance of carbon fibers in C/C composites via surface treatments, Key Eng. Mat., 132–136 (1997) 1938– 1941.
  29. ASTM D4607-86, Standard test method for determination of iodine number of active carbon, Designation, (1999) 4607–1994.
  30. S. Sugashini, K. Mohamed Meera Sheriffa Begum, Adsorption and desorption studies on the performance of Fe-loaded chitosan carbonized rice husk for metal ion removal, Desal. Water Treat., 51 (2013) 7764–7774.
  31. K.A. Krishnan, S.S. Suresh, S. Arya, K.G. Sreejalekshmi, Adsorptive removal of 2,4-dinitrophenol using active carbon: kinetic and equilibrium modeling at solid–liquid interface, Desal. Water Treat., 54 (2015) 1850–1861.
  32. H-.L. Chiang, C.P. Huang, P.C. Chiang, The surface characteristics of activated carbon as affected by ozone and alkaline treatment, Chemosphere, 47 (2002) 257–265.
  33. A.H. El-Sheikh, A.P. Newman, H.K. Al-Daffaee, S. Phull, N. Cresswell, Characterization of activated carbon prepared from a single cultivar of Jordanian Olive stones by chemical and physicochemical techniques, J. Anal. Appl. Pyrol., 71 (2004) 151–164.
  34. J.C. Vaghetti, E.C. Lima, B. Royer, B.M. da Cunha, N.F. Cardoso, J.L. Brasil, S.L. Dias, Pecan nutshell as biosorbent to remove Cu(II), Mn(II) and Pb(II) from aqueous solutions, J. Haz. Mat., 162 (2009) 270–280.
  35. M.A. Montes-Morán, D. Suárez, J.A. Menéndez, E. Fuente, On the nature of basic sites on carbon surfaces: an overview, Carbon 42 (2004) 1219–1225.
  36. H. Demiral, İ. Demiral, B. Karabacakoğlu, F. Tümsek, Production of activated carbon from olive bagasse by physical activation, Chem. Eng. Res. Des., 89 (2011) 206–213.
  37. B. Cagnon, X. Py, A. Guillot, F. Stoeckli, G. Chambat, Contributions of hemicellulose, cellulose and lignin to the mass and the porous properties of chars and steam activated carbons from various lignocellulosic precursors, Bioresour. Technol., 100 (2009) 292–298.
  38. Ç. Şentorun-Shalaby, M.G. Uçak-Astarlıogˇlu, L. Artok, Ç. Sarıcı, Preparation and characterization of activated carbons by one-step steam pyrolysis/activation from apricot stones, Microporous Mesoporous Mater., 88 (2006) 126–134.
  39. B.S. Girgis, A-.N.A. El-Hendawy, Porosity development in activated carbons obtained from date pits under chemical activation with phosphoric acid, Microporous Mesoporous Mater., 52 (2002) 105–117.
  40. M.A. Lillo-Ródenas, J.P. Marco-Lozar, D. Cazorla-Amorós, A. LinaresSolano, Activated carbons prepared by pyrolysis of mixtures of carbon precursor/alkaline hydroxide, J. Anal. Appl. Pyrol., 80 (2007) 166–174.