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首页> 外文期刊>Macromolecules >Highly Efficient and Reversible Iodine Capture in Hexaphenylbenzene-Based Conjugated Microporous Polymers
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Highly Efficient and Reversible Iodine Capture in Hexaphenylbenzene-Based Conjugated Microporous Polymers

机译:基于六苯基苯的共轭微孔聚合物中高效和可逆的碘捕获

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The effective and safe capture and storage of radioactive iodine (1291 or 1311) is of significant importance during nuclear waste storage and nuclear energy generation. Here we present detailed evidence of highly efficient and reversible iodine capture in hexaphenylbenzene-based conjugated microporous polymers (HCMPs), synthesized via Buchwald-Hartwig (BH) cross-coupling of a hexakis(4-bromophenyl)benzene (HBB) core and aryl diamine linkers. The HCMPs present moderate surface areas up to 430 m(2) g(-1), with narrow pore size distribution and uniform ultramicropore sizes of less than 1 nm. Porous properties are controlled by the strut lengths and rigidities of linkers, while porosity and uptake properties can be tuned by changing the oxidation state of the HCMPs. The presence of a high number of amine functional groups combined with microporosity provides the HCMPs with extremely high iodine affinity with uptake capacities up to 336 wt %, which is to the best of our knowledge the highest reported to date. Two ways to release the adsorbed iodine were explored: either slow release into ethanol or quick release upon heating (with a high degree of control). Spectral studies indicate that the combination of microporosity, amine functionality, and abundant pi-electrons ensured well-defined host-guest interactions and controlled uptake of iodine. In addition, the HCMPs could be recycled while maintaining 90% iodine uptake capacity (up to 295%). We envisage wider application of these materials in the facile uptake and removal of unwanted oxidants from the environment.
机译:在核废料存储和核能发电过程中,有效,安全地捕获和存储放射性碘(1291或1311)非常重要。在这里,我们提供了通过六(4-溴苯基)苯(HBB)核和芳基二胺的布赫瓦尔德-哈特维格(BH)交叉偶联合成的六苯基苯基共轭微孔聚合物(HCMP)中高效和可逆碘捕获的详细证据。连接器。 HCMPs具有中等的表面积,最大可达430 m(2)g(-1),具有狭窄的孔径分布和小于1 nm的均匀超微孔尺寸。多孔性受连接器的支杆长度和刚度控制,而孔隙率和吸收性可通过改变HCMP的氧化态来调整。大量胺官能团与微孔性的结合为HCMP提供了极高的碘亲和力,吸收能力高达336 wt%,据我们所知,这是迄今为止报道的最高水平。探索了两种释放吸附的碘的方法:缓慢释放到乙醇中或加热时快速释放(高度控制)。光谱研究表明,微孔性,胺官能度和丰富的π电子的组合确保了明确定义的主体与客体的相互作用并控制了碘的吸收。此外,可以在保持90%碘吸收能力(高达295%)的同时回收HCMP。我们设想将这些材料更广泛地应用于环境中有害物质的容易吸收和清除中。

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