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首页> 外文期刊>Chemistry: A European journal >Engineering Porous Organic Cage Crystals with Increased Acid Gas Resistance
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Engineering Porous Organic Cage Crystals with Increased Acid Gas Resistance

机译:工程多孔有机笼式晶体,具有更高的耐酸性气体

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Both known and new CC3-based porous organic cages are prepared and exposed to acidic SO2 in vapor and liquid conditions. Distinct differences in the stability of the CC3 cages exist depending on the chirality of the diamine linkers used. The acid catalyzed CC3 degradation mechanism is probed via in situ IR and a degradation pathway is proposed and supported with computational results. CC3 crystals synthesized with racemic mixtures of diaminocyclohexane exhibited enhanced stability compared to CC3-R and CC3-S. Confocal fluorescent microscope images reveal that the stability difference in CC3 species originates from an abundance of mesoporous grain boundaries in CC3-R and CC3-S, allowing facile access of aqueous SO2 throughout the crystal, promoting decomposition. These grain boundaries are absent from CC3 crystals made with racemic linkers.
机译:制备已知的和基于CC3的新型多孔有机笼,并使其在蒸汽和液体条件下暴露于酸性SO2中。 CC3笼的稳定性存在明显差异,具体取决于所用二胺接头的手性。通过原位红外探测了酸催化的CC3降解机理,并提出了降解途径并得到了计算结果的支持。与CC3-R和CC3-S相比,用二氨基环己烷的外消旋混合物合成的CC3晶体显示出更高的稳定性。共聚焦荧光显微镜图像显示,CC3物种的稳定性差异源自CC3-R和CC3-S中大量的中孔晶界,从而使整个水溶液中的SO2易于进入,从而促进了分解。用外消旋连接体制成的CC3晶体不存在这些晶界。

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