Li Gen, Liang Jianli, Lin Jing, Li Hongyu, Liu Yan, Xu Guoyang, Yu Chao, Guo Zhonglu, Tang Chengchun, Huang Yang
School of Materials Science and Engineering, Hebei University of Technology, Tianjin 300130, PR China; Hebei Key Laboratory of Boron Nitride Micro and Nano Materials, Hebei University of Technology, Tianjin 300130, PR China.
School of Materials Science and Engineering, Hebei University of Technology, Tianjin 300130, PR China; Hebei Key Laboratory of Boron Nitride Micro and Nano Materials, Hebei University of Technology, Tianjin 300130, PR China.
J Hazard Mater. 2023 Oct 15;460:132481. doi: 10.1016/j.jhazmat.2023.132481. Epub 2023 Sep 4.
Radioactive iodine vapors produced by nuclear fission can pose a significant risk to human health and the environment. Effective monitoring of iodine vapor leakage, capture and storage of radioactive iodine vapor are of great importance for the safety of the nuclear industry. Herein, we report a novel structure-function integrated solid iodine vapor adsorbent based on metal-modified boron nitride (BN) aerogel. Metal-modified BN aerogels incorporated with Cu/Ag nanoparticles (named as BN-Cu and BN-Ag, respectively) are successfully prepared by a metal-induced, ultrasonic-assisted, and in-situ transformation method. The metal-modified BN aerogels show improved mechanical properties in both of the maximum stress and residual deformation. Remarkably, due to the greatly enhanced "host-guest" and "guest-guest" effects by the introduction of metal nanoparticles, the BN-Cu and BN-Ag aerogels exhibit record-breaking iodine vapor adsorption capacities among inorganic adsorbents (1739.8 and 2234.13 wt% respectively), which are even higher than that of most organic adsorbents. Furthermore, an integrated iodine adsorption detection device based on metal-modified aerogels is constructed to realize real-time detection of the electrical properties of aerogels during iodine adsorption. This work provides a foundation for the development of BN aerogels as multifunctional platforms for effective iodine capture and detection. It also introduces new ideas for the use of structural-functional integrated materials in the prevention and control of radioactive iodine pollution.
核裂变产生的放射性碘蒸气会对人类健康和环境构成重大风险。有效监测碘蒸气泄漏、捕获和储存放射性碘蒸气对于核工业安全至关重要。在此,我们报道了一种基于金属改性氮化硼(BN)气凝胶的新型结构-功能一体化固体碘蒸气吸附剂。通过金属诱导、超声辅助和原位转化法成功制备了负载铜/银纳米颗粒的金属改性BN气凝胶(分别命名为BN-Cu和BN-Ag)。金属改性BN气凝胶在最大应力和残余变形方面均表现出改善的力学性能。值得注意的是,由于引入金属纳米颗粒极大地增强了“主-客”和“客-客”效应,BN-Cu和BN-Ag气凝胶在无机吸附剂中展现出破纪录的碘蒸气吸附容量(分别为1739.8和2234.13 wt%),甚至高于大多数有机吸附剂。此外,构建了基于金属改性气凝胶的一体化碘吸附检测装置,以实现碘吸附过程中气凝胶电学性能的实时检测。这项工作为将BN气凝胶开发成有效捕获和检测碘的多功能平台奠定了基础。它还为结构-功能一体化材料在放射性碘污染防控中的应用引入了新思路。