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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Design and synthesis of novel carbazote-spacer-carbazole type conjugated microporous networks for gas storage and separation
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Design and synthesis of novel carbazote-spacer-carbazole type conjugated microporous networks for gas storage and separation

机译:新型用于气体存储和分离的咔唑-间隔基-咔唑型共轭微孔网络的设计与合成

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摘要

Two novel conjugated microporous networks, P-l and P-2, with carbazole-spacer-carbazole topological model structures, were designed and prepared by FeCl3 oxidative coupling polymerization. Monomer m-1 (fluorenone spacer) was modified with a thiophene Grignard to form the fluorenyl tertiary alcohol monomer m-2, and this step can increase the polymerization branches from four to five and incorporate the polar -OH group into the building block. N2 adsorption isotherms show that, after modification, the Brunauer-Emmett-Teller (BET) surface area of P-2 (1222 m~2 g~(-1)) is two times that of P-1 (611 m~2 g~(-1)), and the total pore volume increases 1.63 times from 0.95 to 1.55 at P/PO = 0.99. However, the domain pore size (centred at 1.19 nm) and the pore distribution of both networks are not changed. It demonstrates that the domain pore width may be determined by the size of the rigid carbazole-spacer-carbazole backbone, not the degree of crosslinking when the networks were prepared under same polymerization conditions in this system. Hydrogen physisorption isotherms of P-l and P-2 show that the H2 storage can be up to 1.05 wt% and 1.66 wt% at 77 K and 1.1 bar, and the isosteric heat is 9.89 kJ mol~(-1) and 10.86 kJ mol~(-1), respectively. At 273 K and 1.1 bar, the CO2 uptake capacity of P-2 can be up to 14.5 wt% which is 1.63 times that of P-l under the same conditions. The H2 and CO2 uptake capacities of P-2 are among the highest reported for conjugated microporous networks under similar conditions. The CO2/CH4 and CO2/N2 selectivity results indicate that P-l exhibits a slightly higher separation ability than P-2. There is often a trade-off between absolute uptake and selectivity in other microporous organic polymers. Fine design and tailoring the topological structure of the monomer can change the adsorption isosteric enthalpy and optimize the gas uptake performance. The obtained networks with the carbazole-spacer-carbazole rigid backbone show promise for potential use in clean energy applications and the environmental field.
机译:通过FeCl3氧化偶联聚合,设计并制备了两个具有咔唑-间隔-咔唑拓扑模型结构的新型共轭微孔网络P-1和P-2。用噻吩格利雅(Grignard)改性单体m-1(芴酮间隔基)以形成芴基叔醇单体m-2,该步骤可以将聚合支链从四个增加到五个,并将极性-OH基团并入结构单元中。 N2吸附等温线表明,经过修饰,P-2的Brunauer-Emmett-Teller(BET)表面积(1222 m〜2 g〜(-1))是P-1的两倍(611 m〜2 g) 〜(-1)),并且在P / PO = 0.99时,总孔体积从0.95到1.55倍增长了1.63倍。但是,两个区域的区域孔径(以1.19 nm为中心)和孔分布均未改变。结果表明,当在相同体系中以相同聚合条件制备网络时,畴孔宽度可能由刚性咔唑-间隔基-咔唑主链的大小决定,而不是由交联度决定。 P1和P-2的氢物理吸附等温线表明,在77 K和1.1 bar下H2的储氢量分别可达1.05 wt%和1.66 wt%,等规热为9.89 kJ mol〜(-1)和10.86 kJ mol〜 (-1)。在273 K和1.1 bar下,P-2的CO2吸收能力可以达到14.5 wt%,是相同条件下P-1的1.63倍。 P-2的H2和CO2吸收能力是在相似条件下共轭微孔网络报道的最高值。 CO 2 / CH 4和CO 2 / N 2的选择性结果表明,P-1的分离能力比P-2略高。在其他微孔有机聚合物中,绝对摄取和选择性之间通常需要权衡取舍。精细设计和定制单体的拓扑结构可以改变吸附等规焓并优化气体吸收性能。所获得的具有咔唑-间隔基-咔唑刚性骨架的网络显示出有望在清洁能源应用和环境领域中使用的潜力。

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