1 , indicating chemisorption nature of the ongoing biosorption process. A thermodynamic study showed spontaneous and exothermic nature of the biosorption process. Owing to its low cost and high dye uptake capacity, PLP has potential for application as biosorbent for removal of CV from aqueous solutions." />
Insight into biosorption equilibrium, kinetics and thermodynamics of crystal violet onto Ananas comosus (pineapple) leaf powder
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  • 作者:Sagnik Chakraborty (1)
    Shamik Chowdhury (1)
    Papita Das Saha (1)
  • 关键词:Biosorption ; Pineapple leaf powder ; Crystal violet ; Equilibrium ; Kinetics ; Thermodynamics
  • 刊名:Applied Water Science
  • 出版年:2012
  • 出版时间:June 2012
  • 年:2012
  • 卷:2
  • 期:2
  • 页码:135-141
  • 全文大小:320KB
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    4. Chakraborty S, Chowdhury S, Saha PD (2011) Adsorption of crystal violet from aqueous solution onto NaOH-modified rice husk. Carbohydr Polym 86:1533-541 CrossRef
    5. Chowdhury S, Das P (2011) Mechanistic kinetic and thermodynamic evaluation of adsorption of hazardous malachite green onto conch shell powder. Sep Sci Technol 46:1966-976 CrossRef
    6. Chowdhury S, Saha P (2010) Sea shell powder as a new adsorbent to remove Basic Green 4 (Malachite Green) from aqueous solutions: equilibrium kinetic and thermodynamic studies. Chem Eng J 164:168-77 CrossRef
    7. Chowdhury S, Mishra R, Kushwaha P, Saha P (2010) Removal of safranin from aqueous solutions by NaOH-treated rice husk: thermodynamics kinetics and isosteric heat of adsorption. Asia-Pac J Chem Eng. doi:101002/apj525
    8. Chowdhury S, Mishra R, Saha P, Kushwaha P (2011a) Adsorption thermodynamics kinetics and isosteric heat of adsorption of malachite green onto chemically modified rice husk. Desalination 265:159-68 CrossRef
    9. Chowdhury S, Chakraborty S, Saha P (2011b) Biosorption of Basic Green 4 from aqueous solution by / Ananas comosus (pineapple) leaf powder. Coll Surf B 84:520-27 CrossRef
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    16. Khattri SD, Singh MK (2011) Use of Sagaun sawdust as an adsorbent for the removal of crystal violet dye from simulated wastewater. Environ Prog Sustain Energy. doi:101002/ep10567
    17. Kumar R, Ahmad R (2011) Biosorption of hazardous crystal violet dye from aqueous solution onto treated ginger waste (TGW). Desalination 265:112-18 CrossRef
    18. Namasivayam C, Kumar MD, Selvi K, Begum RA, Vanathi T, Yamuna RT (2001) ‘Waste-coir pith—a potential biomass for the treatment of dyeing wastewaters. Biomass Bioenergy 6:477-83 CrossRef
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  • 作者单位:Sagnik Chakraborty (1)
    Shamik Chowdhury (1)
    Papita Das Saha (1)

    1. Department of Biotechnology, National Institute of Technology-Durgapur, Mahatma Gandhi Avenue, Durgapur, WB, 713209, India
  • ISSN:2190-5495
文摘
Biosorption performance of pineapple leaf powder (PLP) for removal of crystal violet (CV) from its aqueous solutions was investigated. To this end, the influence of operational parameters such as pH, biosorbent dose, initial dye concentration and temperature were studied employing a batch experimental setup. The biosorption process followed the Langmuir isotherm model with high correlation coefficients (R 2?>?0.99) at different temperatures. The maximum monolayer biosorption capacity was found to be 78.22?mg?g? at 293?K. The kinetic data conformed to the pseudo-second-order kinetic model. The activation energy of the system was calculated as 58.96?kJ?mol?strong class="a-plus-plus">1 , indicating chemisorption nature of the ongoing biosorption process. A thermodynamic study showed spontaneous and exothermic nature of the biosorption process. Owing to its low cost and high dye uptake capacity, PLP has potential for application as biosorbent for removal of CV from aqueous solutions.

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