Synthesis of Mesoporous Graphite Functionalized by Nitrogen for Efficient Removal of Safranin Dye Utilizing Rice Husk Ash; Equilibrium Studies and Response Surface Optimization

被引:0
作者
Mohamed Shaban
Mostafa R. Abukhadra
Aya S. Mohamed
Mohamed G. Shahien
Suzan S. Ibrahim
机构
[1] Beni-Suef University,Nanophotonics and Applications Lab, Physics Department, Faculty of Science
[2] Beni-Suef University,Geology Department, Faculty of Science
[3] Central Metallurgical Research and Development Institute,undefined
来源
Journal of Inorganic and Organometallic Polymers and Materials | 2018年 / 28卷
关键词
Porous graphitic carbon; Rice husk ash; Dye removal; Kinetic studies; Adsorption isotherm;
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摘要
Mesoporous graphitic carbon (PG) was successfully synthesized from alkaline treated rice husk ash through chemical activation by phosphoric acid at 800 °C for 1 h and modified by nitric acid to produce porous graphite with nitrogen functional group (N.PG). The morphology and structure of N.PGC were characterized by XRD, SEM and Micromeritics ASAP2010 analyzer at 77 K. N.PG was applied as an adsorbent material for safranin-O dye from aqueous solution. The removal of safranin dye by the synthetic porous graphite with nitrogen functional groups shows higher capacity as compared to the pure phase of porous graphite. The adsorption process was investigated as a function of contact time, adsorbent mass, pH, initial dye concentration and ionic strength. The kinetic studies revealed that the adsorption equilibrium was reached after 480 min and the obtained data well fitted with the pseudo-second-order kinetic model and Elovich kinetic model. The equilibrium adsorption isotherm of safranin by the synthetic N.PG was described with Langmuir isotherm model, and the calculated qmax is 20.66 mg/g. The removal process is highly dependent on the pH value of the solution, and the optimum pH for maximum removal of safranin-O is pH 6. The response surface methodology in conjunction with the central composite rotatable design was used to optimize the sorption process. From the second order polynomial model, the predicted optimum conditions for maximum removal of safranin (100%) are 365 min contact time, 0.3 g dose, 5 g/l NaCl and pH 6 at initial concentration 127 mg/l.
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页码:279 / 294
页数:15
相关论文
共 166 条
  • [1] Adebowale KO(2014)undefined J. Encapsul. & Adsorpt. Sci. 4 89-104
  • [2] Olu-Owolabi BI(2012)undefined Asia-Pacific J. Chem. Eng. 7 236-832
  • [3] Chigbundu EC(2009)undefined Nanotechnology 9 2-undefined
  • [4] Chowdhury S(2013)undefined Procedia Environ. Sci. 17 270-undefined
  • [5] Mishra R(2007)undefined Desalination 214 327-undefined
  • [6] Kushwaha P(2010)undefined Desalination 250 885-undefined
  • [7] Saha P(2000)undefined Fuel Process. Technol. 64 155-undefined
  • [8] Song Z(2001)undefined Langmuir 17 7112-undefined
  • [9] Chen L(2007)undefined Int. J. Hydrogen Energy 32 5005-undefined
  • [10] Huand J(2017)undefined Environ. Sci. Pollut. Res. 24 18135-undefined