4.7 Article

Novel preparation of amidoxime functionalized hyper-cross-linked polymeric adsorbent on the efficient adsorption of uranium in aqueous solution

Journal

MICROPOROUS AND MESOPOROUS MATERIALS
Volume 331, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.micromeso.2021.111647

Keywords

Hyper-crosslinked reaction; Porous material; Amidoxime; Uranium (VI)

Funding

  1. Natural Science Foun-dation of Heilongjiang Province [LH2021E095]
  2. National Natural Science Foundation of China [52003067]
  3. Heilongjiang Postdoctoral Scientific Research Developmental Fund [LBH-Q20108, LBH-Q21013]
  4. China Postdoctoral Science Foundation [2019M651268]
  5. Funda-mental Research Funds for the Central Universities [3072021CF1019]

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A series of novel amidoxime-functionalized porous polymeric adsorbents were synthesized using a simple knitting synthetic strategy, showing good uranium adsorption capacity and reusability. The materials provide a potential approach for synthesizing novel porous materials with practical applications.
Herein, a series of novel amidoxime-functionalized porous polymeric adsorbents using dimethoxymethane (FDA) as the external cross-linker and biphenyl and amidoxime-functionalized 1-(benzyloxy)-4-ethylbenzene (BP-AO) as the original monomers were synthesized in one-pot Friedel-Crafts alkylation reactions via a simple knitting synthetic strategy. The adsorbents were characterized by FT-IR, solid-state 13C NMR/MAS spectrum, N2 adsorption-desorption, etc. The adsorption mechanism was probed by XPS, which suggests that the eta 2 complexation between uranium and amidoxime, and the polymers provide an approach to synthesize novel porous materials. The batch adsorption experiments showed that amidoxime hyper-crosslinked polymer-2 (HCPA-2) displays a uranium adsorption capacity of 27.7 mg/g at pH 6. The static adsorption action was more consistent with the Langmuir model and pseudo-second-order kinetics. Ionic competition experiments showed that Kd (U(IV)) is as high as 695.94 mL/g and reusable with a removal rate up to 60% after 7 cycles when 0.1 M HNO3 was used as a stripping agent, which verifies the practical application potential of the materials.

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