Nghiên cứu về hành vi chiếu xạ gamma của các chất hấp phụ silica mesopore được chức năng hóa bằng các ligand phosphine oxide và axit phosphonic

Journal of Radioanalytical and Nuclear Chemistry - Tập 307 - Trang 1445-1451 - 2015
Wen Zhang1,2, Gang Ye2, Jing Chen2
1School of Chemical Engineering and Technology, Tianjin Key Laboratory of Membrane Science and Desalination Technology, Tianjin University, Tianjin, China
2Institute of Nuclear and New Energy Technology, Collaborative Innovation Center of Advanced Nuclear Energy Technology, Tsinghua University, Beijing, China

Tóm tắt

Độ bền của các chất hấp phụ silica mesopore mang phosphine oxide (SBA-P(O)Pr2) và axit phosphonic (SBA-P(O)(OH)2) dưới tác động của chiếu xạ gamma (trong không khí và dung dịch HNO3 2 mol/L) đã được đánh giá một cách hệ thống. Sự thay đổi trong thành phần, cấu trúc và khả năng hấp phụ (U(VI)) của các chất hấp phụ đã được khảo sát. Cả hai loại chất hấp phụ mang ligand hữu cơ phosphorus đều thể hiện độ bền đáng kể dưới tác động của chiếu xạ gamma với tổng liều lên đến 5 × 105 Gy. Khung silica mesopore và hai loại ligand hữu cơ phosphorus đã được bảo tồn tốt mà không bị thiệt hại do chiếu xạ. Hơn nữa, sau khi chiếu xạ, các chất hấp phụ vẫn duy trì khả năng hấp phụ hiệu quả đối với U(VI) trong môi trường có độ acid cao hoặc trong các dung dịch có pH khác nhau.

Từ khóa

#chiếu xạ gamma #silica mesopore #phosphine oxide #axit phosphonic #hấp phụ U(VI)

Tài liệu tham khảo

Manohar S, Sharma JN, Shah BV (2007) Process development for bulk separation of trivalent actinides and lanthanides from radioactive high-level liquid waste. Nucl Sci Eng 156(1):96–102 Ewing RC, Weber WJ, Clinard FW Jr (1995) Radiation effects in nuclear waste forms for high-level radioactive waste. Prog Nucl Energy 29(2):63–127 Aytas SO, Akyil S, Eral M (2004) Adsorption and thermodynamic behavior of uranium on natural zeolite. J Radioanal Nucl Chem 260(1):119–125 Paiva AP, Malik P (2004) Recent advances on the chemistry of solvent extraction applied to the reprocessing of spent nuclear fuels and radioactive wastes. J Radioanal Nucl Chem 261(2):485–496 Mincher BJ, Modolo G, Mezyk SP (2009) Review article: the effects of radiation chemistry on solvent extraction 3: a review of actinide and lanthanide extraction. Solvent Extr Ion Exch 27(5–6):579–606 Makowski P, Deschanels X, Grandjean A (2012) Mesoporous materials in the field of nuclear industry: applications and perspectives. New J Chem 36(3):531–541 Jamali MR, Assadi Y, Shemirani F (2006) Synthesis of salicylaldehyde-modified mesoporous silica and its application as a new sorbent for separation, preconcentration and determination of uranium by inductively coupled plasma atomic emission spectrometry. Anal Chim Acta 579(1):68–73 Sert Ş, Eral M (2010) Uranium adsorption studies on aminopropyl modified mesoporous sorbent (NH2–MCM-41) using statistical design method. J Nucl Mater 406(3):285–292 Lebed PJ, de Souza K, Bilodeau F (2011) Phosphonate-functionalized large pore 3-D cubic mesoporous (KIT-6) hybrid as highly efficient actinide extracting agent. Chem Commun 47(41):11525–11527 Zhang W, Ye G, Chen J (2012) Composite materials for uranium adsorption. Prog Chem 12:6 Hasan SH, Shukla JP (2003) Tri-iso-amyl phosphate (TAP): an alternative extractant to tri-butyl phosphate (TBP) for reactor fuel reprocessing. J Radioanal Nucl Chem 258(3):563–573 Zhang W, Ye G, Chen J (2012) TRPO impregnated levextrel resin: synthesis and extraction behavior of Zr(IV) and Nd(III) ions. Sep Sci Technol 48(2):263–271 Jensen MP, Bond AH (2002) Influence of aggregation on the extraction of trivalent lanthanide and actinide cations by purified Cyanex 272, Cyanex 301, and Cyanex 302. Radiochim Acta 90(4/2002):205–209 Nash K L (2000) Organophosphorus reagents in actinide separations: unique tools for production, cleanup and disposal. Argonne National Laboratory, Argonne, IL (United States). Funding organisation: US Department of Energy Zhang W, Ye G, Chen J (2013) Novel mesoporous silicas bearing phosphine oxide ligands with different alkyl chains for the binding of uranium in strong HNO3 media. J Mater Chem A 1(41):12706–12709 Zhang W, He X, Ye G (2014) Americium (III) capture using phosphonic acid-functionalized silicas with different mesoporous morphologies: adsorption behavior study and mechanism investigation by EXAFS/XPS. Environ Sci Technol 48(12):6874–6881 Mowafy EA (2004) The effect of previous gamma-irradiation on the extraction of U(VI), Th(IV), Zr (IV), Eu(III) and Am(III) by various amides. J Radioanal Nucl Chem 260(1):179–187 Kikuchi T, Maruyama K, Goto I (2006) Durability of CMPO impregnated silica adsorbent under irradiation conditions. J Nucl Sci Technol 43(5):562–568 Nogami M, Sugiyama Y, Kawasaki T (2013) Stability of polyvinylpolypyrrolidone against gamma-ray irradiation in HNO3 media. J Radioanal Nucl Chem 296(1):423–427 Kikuchi T, Goto I, Suzuki K (2006) Effect of irradiation on adsorption performance of thiacalix [4] arene impregnated silica adsorbent. J Nucl Sci Technol 43(6):690–693 Sabah E, Marie G, Guillaume T (2012) Stability of Stability of mesoporous silica under acidic conditions. RSC Adv 2:10916–10924 Koma Y, Sano Y (2007) Watanabe S (2008) Gamma-ray irradiation durability of silica based adsorbents for the extraction chromatography. JAEA Takasaki Annu Rep 11:21 Alexander M, Robert W, Spas D (2010) Extraction of uranium(VI) from sulfate solutions using a polymer inclusion membrane containing di-(2-ethylhexyl) phosphoric acid. J Membr Sci 364(1–2):354–361