Cao Jiaxin, Duan Siyihan, Zhao Qian, Chen Guangyuan, Wang Zeru, Liu Ruixi, Zhu Lin, Duan Tao
State Key Laboratory of Environment-Friendly Energy Materials, Southwest University of Science and Technology, Mianyang, Sichuan 621010, People's Republic of China.
Tianfu Institute of Research and Innovation, Southwest University of Science and Technology, Chengdu, Sichuan 610299, People's Republic of China.
Langmuir. 2023 Sep 12;39(36):12910-12919. doi: 10.1021/acs.langmuir.3c02041. Epub 2023 Aug 30.
The effective capture and deposition of radioactive iodine in the spent fuel reprocessing process is of great importance for nuclear safety and environmental protection. Three-dimensional (3D) fiber felt with structural diversity and tunability is applied as an efficient adsorbent with easy separation for iodine capture. Here, a bismuth-based silica aerogel fiber felt (Bi@SNF) was synthesized using a facile hydrothermal method. Abundant and homogeneous Bi nanoparticles greatly enhanced the adsorption and immobilization of iodine. Notably, Bi@SNF demonstrated a high capture capacity of 982.9 mg/g by forming stable BiI and BiOI phases, which was about 14 times higher than that of the unloaded material. Fast uptake kinetics and excellent resistance to nitric acid and radiation were exhibited as a result of the 3D porous interconnected network and silica aerogel fiber substrate. Adjustable size and easy separation and recovery give the material potential as a radioactive iodine gas capture material.
乏燃料后处理过程中放射性碘的有效捕获和沉积对于核安全和环境保护至关重要。具有结构多样性和可调性的三维(3D)纤维毡被用作一种高效吸附剂,用于碘捕获且易于分离。在此,采用简便的水热法合成了一种铋基二氧化硅气凝胶纤维毡(Bi@SNF)。大量且均匀的铋纳米颗粒极大地增强了碘 的吸附和固定。值得注意的是,Bi@SNF通过形成稳定的BiI和BiOI相表现出982.9 mg/g的高捕获容量,这比未负载材料的捕获容量高约14倍。由于3D多孔互连网络和二氧化硅气凝胶纤维基质,表现出快速的吸附动力学以及对硝酸和辐射的优异抗性。可调节的尺寸以及易于分离和回收赋予该材料作为放射性碘气体捕获材料的潜力。