4.7 Article

Facile synthesis of novel Bi0-SBA-15 adsorbents by an improved impregnation reduction method for highly efficient capture of iodine gas

Journal

JOURNAL OF HAZARDOUS MATERIALS
Volume 424, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.jhazmat.2021.127678

Keywords

Iodine gas; Bismuth; SBA-15; Impregnation reduction method; Adsorption

Funding

  1. National Natural Science Foundation of China [22176157, 22006123]
  2. Project of Spent Fuel Reprocessing [KY20007]
  3. Sichuan Science and Technology Program [2020JDRC0068]
  4. Project of State Key Laboratory of Environment-friendly Energy Materials, Southwest University of Science and Technology [18fksy0215, 20fksy12]
  5. Project of Science and Technology Department of Sichuan Province [2021JDTD0019]
  6. Doctor Research Foundation of Southwest University of Science and Technology [20zx7145]

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The study successfully synthesized Bi-0-SBA-15 for efficient capture of iodine gas, demonstrating excellent capture performance and stability, providing important support for the development of nuclear energy.
Development of high efficient adsorbents to capture iodine is of great significance for the active development of nuclear power. Herein, Bi-0-SBA-15 was firstly synthesized and applied for capture of iodine gas. Bi-0-SBA-15 materials were prepared by an improved impregnation reduction method. The benefit of this method was that the Bi-0 nanoparticles with flocculent and spherical morphologies were loaded on the surface of SBA-15, which provide abundant active sites for iodine and improve the utilization rate of active sites, so as to attain a record high capture capacity (up to 925 mg/g within 60 min) and high stablitiy (91.2%) at 200 degrees C. The results demonstrated that the loading of Bi-0 on the surface showed a significant impact on the structure of Bi-0-SBA-15 and did greatly enhance the iodine capture. Furthermore, the high iodine capture capacity mainly derived from the chemical adsorption in the stable form of BiI3. The obtained Bi-0-SBA-15 materials exhibited excellent aqueous and irradiation stability. Thus, the results indicated that the new and highly efficient Bi0-SBA-15 was a potential radioactive iodine gas capture material.

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