References

  1. E.P. Chagas, L.R. Durrant, Decolorization of azo dyes by Phanerochaete chrysosporium and Pleurotus sajorcaju, Enzyme Microb. Technol., 29 (2001) 473–477.
  2. P.K. Malik, Use of activated carbons prepared from sawdust and rice-husk for adsorption of acid dyes: a case study of Acid Yellow 36, Dyes Pigm., 56 (2003) 239–249.
  3. D. Shen, J. Fan, W. Zhou, B. Gao, Q. Yue, Q. Kang, Adsorption kinetics and isotherm of anionic dyes onto organo-bentonite from single and multisolute systems, J. Hazard. Mater., 172 (2009) 99–107.
  4. K. Kadirvelu, M. Kavipriya, C. Karthika, M. Radhika, N. Vennilamani, S. Pattabhi, Utilization of various agricultural wastes for activated carbon preparation and application for the removal of dyes and metal ions from aqueous solutions, Bioresour. Technol., 87 (2003) 129–132.
  5. H. Wu, J. Fan, Z. Jian, H.H. Ngo, W. Guo, L. Shuang, J. Lv, S. Lu, W. Wu, S. Wu, Intensified organics and nitrogen removal in the intermittent-aerated constructed wetland using a novel sludgeceramsite as substrate, Bioresour. Technol., 210 (2016) 101–107.
  6. T.M. Coelho, E.C. Vidotti, M.C. Rollemberg, A.N. Medina, M.L. Baesso, N. Cella, A.C. Bento, Photoacoustic spectroscopy as a tool for determination of food dyes: comparison with first derivative spectrophotometry, Talanta, 81 (2010) 202–207.
  7. H. Wu, Z. Jian, H.H. Ngo, W. Guo, H. Zhen, L. Shuang, J. Fan, L. Hai, A review on the sustainability of constructed wetlands for wastewater treatment: design and operation, Bioresour. Technol., 175 (2014) 594–601.
  8. F.P.D. Sá, B.N. Cunha, L.M. Nunes, Effect of pH on the adsorption of Sunset Yellow FCF food dye into a layered double hydroxide (CaAl-LDH-NO3), Chem. Eng. J., 215–216 (2013) 122–127.
  9. S.E. Bailey, T.J. Olin, R.M. Bricka, D.D. Adrian, A review of potentially low-cost sorbents for heavy metals, Water Res., 33 (1999) 2469–2479.
  10. H. Wu, J. Fan, Z. Jian, H.H. Ngo, W. Guo, H. Zhen, L. Shuang, Decentralized domestic wastewater treatment using intermittently aerated vertical flow constructed wetlands: impact of influent strengths, Bioresour. Technol., 176 (2014) 163–168.
  11. A.K. Jain, V.K. Gupta, A. Bhatnagar, Suhas, Utilization of industrial waste products as adsorbents for the removal of dyes, J. Hazard. Mater., 101 (2003) 31–42.
  12. C.D. Woolard, J. Strong, C.R. Erasmus, Evaluation of the use of modified coal ash as a potential sorbent for organic waste streams, Appl. Geochem., 17 (2002) 1159–1164.
  13. S. Wang, M. Soudi, L. Li, Z.H. Zhu, Coal ash conversion into effective adsorbents for removal of heavy metals and dyes from wastewater, J. Hazard Mater., 133 (2006) 243–251.
  14. A. Altınışık, E. Gür, Y. Seki, A natural sorbent, Luffa cylindrica for the removal of a model basic dye, J. Hazard. Mater., 179 (2010) 658–664.
  15. H. Demir, A. Top, D. Balköse, S. Ülkü, Dye adsorption behavior of Luffa cylindrica fibers, J. Hazard. Mater., 153 (2008) 389–394.
  16. V.O.A. Tanobe, T.H.D. Sydenstricker, M. Munaro, S.C. Amico, A comprehensive characterization of chemically treated Brazilian sponge-gourds (Luffa cylindrica), Polym. Test., 24 (2005) 474–482.
  17. Q.S. Liu, Z. Tong, W. Peng, G. Liang, Preparation and characterization of activated carbon from bamboo by microwave-induced phosphoric acid activation, Ind. Crop Prod., 31 (2010) 233–238.
  18. M. Miao, Y. Wang, Q. Kong, L. Shu, Adsorption kinetics and optimum conditions for Cr(VI) removal by activated carbon prepared from luffa sponge, Desal. Wat. Treat., 57 (2016) 7763–7772.
  19. J. Li, Z. Ren, Y. Ren, L. Zhao, S. Wang, J. Yu, Activated carbon with micrometer-scale channels prepared from luffa sponge fibers and their application for supercapacitors, RSC Adv., 4 (2014) 35789–35796.
  20. W.J. Weber, J.C. Morris, Kinetics of adsorption on carbon from solution, J. Sanitary Eng. Div. Proc. Am. Soc. Civil Eng., 1 (1963) 1–2.
  21. Y.S. Ho, G. Mckay, Pseudo-second order model for sorption processes, Process Biochem., 34 (1999) 451–465.
  22. C. Yao, T. Chi, Approximate solution of intraparticle diffusion equations and their application to continuous-flow stirred tank and fixed-bed adsorption calculations, Sep. Technol., 4 (1994) 67–80.
  23. Y. Liu, Some consideration on the Langmuir isotherm equation, Colloids Surf., A, 274 (2006) 34–36.
  24. B. Xiang, L.I. Yi-Jiu, Applications of isothermal adsorption equations to heavy metal ions adsorption phenomena, Nonferrous Met., 59 (2007) 77–80.
  25. B. Mcenaney, Estimation of the dimensions of micropores in active carbons using the Dubinin-Radushkevich equation, Carbon, 25 (1987) 69–75.
  26. Y.H. Li, Z. Di, J. Ding, D. Wu, Z. Luan, Y. Zhu, Adsorption thermodynamic, kinetic and desorption studies of Pb2+ on carbon nanotubes, Water Res., 39 (2005) 605–609.
  27. S. Li, M. Tao, Y. Xie, Reduced graphene oxide modified luffa sponge as a biocomposite adsorbent for effective removal of cationic dyes from aqueous solution, Desal. Wat. Treat., 57 (2016) 20049–20057.
  28. I.O. Mazali, O.L. Alves, Morphosynthesis: high fidelity inorganic replica of the fibrous network of loofa sponge (Luffa cylindrica), An. Acad. Bras. Ciênc., 77 (2005) 25–31.
  29. Y.K. Liu, M. Seki, S. Furusaki, Plant cell immobilization in loofa sponge using two-way bubble circular system, J. Chem. Eng. Jpn., 32 (1999) 8–14.
  30. M. Wang, J. Zhang, Y. Gao, X. Yang, J. Zhao, Determination of Sunset Yellow in soft drinks at attapulgite modified expanded graphite paste electrode, J. Electrochem Soc., 161 (2013) H86–H91.
  31. Y.Z. Sun, X.P. Zhang, R.M. Gong, H.J. Liu, Y. Chao, Effect of chemical modification on dye adsorption capacity of peanut hull, Dyes Pigm., 67 (2006) 175–181.
  32. M. Ghaedi, A.H. Jah, Cadmium telluride nanoparticles loaded on activated carbon as adsorbent for removal of sunset yellow, Spectrochim. Acta, Part A, 90 (2012) 22–27.
  33. M.A.M. Salleh, D.K. Mahmoud, A.W.A.K. Wan, A. Idris, Cationic and anionic dye adsorption by agricultural solid wastes: a comprehensive review, Desalination, 280 (2011) 1–13.
  34. Q. Kong, Y. Wang, L. Shu, M. Miao, Isotherm, kinetic, and thermodynamic equations for cefalexin removal from liquids using activated carbon synthesized from loofah sponge, Desal. Wat. Treat., 57 (2016) 7933–7942.
  35. J.F. Osma, V. Saravia, J.L. Toca-Herrera, S.R. Couto, Sunflower seed shells: a novel and effective low-cost adsorbent for the removal of the diazo dye Reactive Black 5 from aqueous solutions, J. Hazard. Mater., 147 (2007) 900–905.
  36. Q. Kong, Q. Liu, M. Miao, Y. Liu, Q. Chen, C. Zhao, Kinetic and equilibrium studies of the biosorption of sunset yellow dye by alligator weed activated carbon, Desal. Wat. Treat., 66 (2017) 281–290.
  37. Y. Wang, Q. Liu, L. Shu, M. Miao, Y. Liu, Q. Kong, Removal of Cr(VI) from aqueous solution using Fe-modified activated carbon prepared from luffa sponge: kinetic, thermodynamic, and isotherm studies, Desal. Wat. Treat., 57 (2016) 29467–29478.
  38. M. Ghaedi, A. Hekmati Jah, S. Khodadoust, R. Sahraei, A. Daneshfar, A. Mihandoost, M.K. Purkait, Cadmium telluride nanoparticles loaded on activated carbon as adsorbent for removal of sunset yellow, Spectrochim. Acta, Part A, 90 (2012) 22–27.
  39. M. Ghaedi, Comparison of cadmium hydroxide nanowires and silver nanoparticles loaded on activated carbon as new adsorbents for efficient removal of Sunset yellow: kinetics and equilibrium study, Spectrochim. Acta, Part A, 94 (2012) 346–351.
  40. Z. Qi, Q. Liu, Z.R. Zhu, Q. Kong, Q.F. Chen, C.S. Zhao, Y.Z. Liu, M.S. Miao, C. Wang, Rhodamine B removal from aqueous solutions using loofah sponge and activated carbon prepared from loofah sponge, Desal. Wat. Treat., 57 (2016) 29421–29433.
  41. R. Gong, X. Zhang, H. Liu, Y. Sun, B. Liu, Uptake of cationic dyes from aqueous solution by biosorption onto granular kohlrabi peel, Bioresour. Technol., 98 (2007) 1319–1323.
  42. H. Nadi, M. Alizadeh, M. Ahmadabadi, A.R. Yari, S. Hashemi, Removal of reactive dyes (green, orange, and yellow) from aqueous solutions by peanut shell powder as a natural adsorbent, Arch. Hyg. Sci. 1 (2012) 41–47.
  43. W.F. Dong, L.H. Zang, Q.L. Feng, Orthogonal experiments for optimizing adsorption of methyl orange from aqueous solution, Adv. Mater. Res., 726–731 (2013) 2241–2245.