4.7 Article

Simultaneous reduction and adsorption for immobilization of uranium from aqueous solution by nano-flake Fe-SC

Journal

JOURNAL OF HAZARDOUS MATERIALS
Volume 320, Issue -, Pages 435-441

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.jhazmat.2016.08.060

Keywords

Sludge; Fe-SC-800; Uranium immobilization; Reductive precipitation; Adsorption

Funding

  1. Nature Science Foundations of China [51508116, U1501231]
  2. Nature Science Foundations of Guangdong Province [2016A030310265]
  3. Science and Technology Research Programs of Guangzhou City [201607010311]
  4. project of chief scholar in Guangzhou [12A007S]
  5. High level university construction project (Regional water environment safety and water ecological protection)
  6. Project of Guangdong Provincial Key Laboratory of radioactive contamination control and resources [2012A061400023]
  7. Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology [2016K0001]
  8. Open Foundation and New Plan of Guangzhou University [2001, 1517]

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Uranium containing radioactive wastewater is seriously hazardous to the natural environment if it is being discharged directly. Herein, nano-flake like Fe loaded sludge carbon (Fe-SC) is synthesized by carbothermal process from Fe-rich sludge waste and applied in the immobilization of uranium in aqueous. Batch isotherm and kinetic adsorption experiments are adopted to investigate the adsorption behavior of Fe-SC to uranium in aqueous. XPS analyses were conducted to evaluate the immobilized mechanism. It was found that the carbonized temperature played significant role in the characteristics and immobilization ability of the resulted Fe-SC. The Fe-SC-800 carbonized at 800 degrees C takes more advantageous ability in immobilization of uranium from aqueous than the commercial available AC and powder zero valent iron. The adsorption behavior could be fitted well with the Langmuir isotherm adsorption model and pseudo-second order model. The equilibrium adsorption amount and rate for Fe-SC-800 is high to 148.99mgg-1 and 0.015gmg-1min-1, respectively. Both reductive precipitation and physical adsorption are the main mechanisms of immobilization of uranium from aqueous by Fe-SC-800. (C) 2016 Elsevier B.V. All rights reserved.

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