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Chemically Stable Guanidinium Covalent Organic Framework for the Efficient Capture of Low-Concentration Iodine at High Temperatures.

Zhiyuan ZhangXinglong DongJun YinZhi-Gang LiXue LiDaliang ZhangTingting PanQiong LeiXiongli LiuYaqiang XieFeng ShuiJinli LiMao YiJin YuanZifeng YouLaiyu ZhangJianhong ChangHongbo ZhangWei LiQianrong FangBaiyan LiXian-He BuYu Han
Published in: Journal of the American Chemical Society (2022)
The capture of radioactive I 2 vapor from nuclear waste under industrial operating conditions remains a challenging task, as the practical industrial conditions of high temperature (≥150 °C) and low I 2 concentration (∼150 ppmv) are unfavorable for I 2 adsorption. We report a novel guanidinium-based covalent organic framework (COF), termed TGDM, which can efficiently capture I 2 under industrial operating conditions. At 150 °C and 150 ppmv I 2 , TGDM exhibits an I 2 uptake of ∼30 wt %, which is significantly higher than that of the industrial silver-based adsorbents such as Ag@MOR (17 wt %) currently used in the nuclear fuel reprocessing industry. Characterization and theoretical calculations indicate that among the multiple types of adsorption sites in TGDM, only ionic sites can bond to I 2 through strong Coulomb interactions under harsh conditions. The abundant ionic groups of TGDM account for its superior I 2 capture performance compared to various benchmark adsorbents. In addition, TGDM exhibits exceptionally high chemical and thermal stabilities that fully meet the requirements of practical radioactive I 2 capture (high-temperature, humid, and acidic environment) and differentiate it from other ionic COFs. Furthermore, TGDM has excellent recyclability and low cost, which are unavailable for the current industrial silver-based adsorbents. These advantages make TGDM a promising candidate for capturing I 2 vapor during nuclear fuel reprocessing. This strategy of incorporating chemically stable ionic guanidine moieties in COF would stimulate the development of new adsorbents for I 2 capture and related applications.
Keyphrases
  • heavy metals
  • high temperature
  • wastewater treatment
  • ionic liquid
  • low cost
  • gold nanoparticles
  • solid state
  • magnetic resonance imaging
  • computed tomography
  • magnetic resonance
  • molecular dynamics