4.6 Article

Bayberry tannin immobilized bovine serum albumin nanospheres: characterization, irradiation stability and selective removal of uranyl ions from radioactive wastewater

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 6, 期 31, 页码 15359-15370

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8ta05000g

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资金

  1. Decommissioning of Military and Nuclear Facilities and Treatment of Radioactive Wastes
  2. National Natural Science Foundation of China [21406182]
  3. Postgraduate Innovation Fund Project by Southwest University of Science and Technology [18ycx031]
  4. Education Department of Sichuan Province [14ZA0104, 17ZB0443]
  5. Fundamental Science on Nuclear Wastes and Environmental Safety Laboratory [15kffk02]
  6. Longshan Academic Talents Supporting Project of Southwest University of Science and Technology [17LZX202, 17LZX622]

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With the widespread use of nuclear energy, uranium containing radioactive waste water has raised global concerns on environmental sustainability, calling for high-performance materials in effective pollution treatments. Here, a novel adsorbent was prepared by immobilizing bayberry tannin onto bovine serum albumin nanospheres (BSA-BT-NSs), which was shaped by antisolvent method. The as-prepared adsorbent was characterized by SEM, TEM, FT-IR, and XPS, and showed excellent adsorption capacity and high selective adsorption for uranyl ions (UO22+) from radioactive wastewater, which included Fe3+, Mn2+, Cs2+, Co2+, and Sr2+. The effects of different adsorption parameters such as pH, temperature, time, and initial UO22+ concentration were investigated. The adsorption isothermal data were well fitted by the Langmuir isotherm model, and a maximum adsorption capacity of 487.805 mg g(-1) was estimated. Furthermore, the BSA-BT-NSs possess excellent stability under Co-60 -ray irradiation at total doses ranging from 10 kGy to 350 kGy. These facts indicated that BSA-BT-NSs could be used as a low-cost and environmentally friendly adsorbent for UO22+ removal with high efficiency and selectivity from various uranium-containing radioactive industrial effluents. More importantly, combined with the characterization analysis, adsorption experimental results, and theory calculations based on density functional theory, the adsorption mechanism of the BSA-BT-NSs is revealed.

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