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Reticular synthesis of HKUST-like tbo MOFs with enhanced CH4 storage

机译:网状合成HKUST的tbo MOF,具有增强的CH4存储

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摘要

Successful implementation of reticular chemistry using a judiciously designed rigid octatopic carboxylate organic linker allowed the construction of expanded HKUST-1-like tbo-MOF series with intrinsic strong CH4 adsorption sites. The Cu-analogue displayed a concomitant enhancement of the gravimetric and volumetric surface area with the highest reported CH4 uptake among the tbo family, comparable to the best performing MOFs for CH4 storage. The corresponding gravimetric (BET) and volumetric surface area of 3971 m2 g-1 and 2363 m2 cm-3 represent an increase of respectively 115 % and 47 % in comparison to the corresponding values for the prototypical HKUST-1 (tbo-MOF-1), and 42 % and 20 % higher than tbo-MOF-2. High pressure methane adsorption isotherms revealed a high total gravimetric and volumetric CH4 uptakes, reaching 372 cm3 (STP) g-1 and 221 cm3 (STP) cm-3 respectively at 85 bar and 298 K. The corresponding working capacities between 5-80 bar were found to be 294 cm3 (STP) g-1 and 175 cm3 (STP) cm-3 and are placed among the best performing MOFs for CH4 storage particularly at relatively low temperature (e.g. 326 cm3 (STP) g-1 and 194 cm3 (STP) cm-3 at 258 K). To better understand the structure-property relationship and gain insight on the mechanism accounting for the resultant enhanced CH4 storage capacity, molecular simulation study was performed and revealed the presence of very strong CH4 adsorption sites at the vicinity of the organic linker with similar adsorption energetics as the open metal sites. The present findings supports the potential of tbo-MOFs based on the supermolecular building layer (SBL) approach as an ideal platform to further enhance the CH4 storage capacity via expansion and functionalization of the quadrangular pillars.
机译:网状化学的成功实施是通过精心设计的刚性八角羧酸酯有机连接基实现的,从而可以构建具有固有的强CH4吸附位点的扩展HKUST-1样tbo-MOF系列。铜类似物显示出重量和体积表面积的增加,在tbo系列中报告的CH4吸收量最高,可与用于存储CH4的性能最佳的MOF相提并论。与原型HKUST-1(tbo-MOF-1)的相应值相比,相应的重量(BET)和3971 m2 g-1和2363 m2 cm-3的体积表面积分别增加了115%和47%。 ),比tbo-MOF-2高42%和20%。高压甲烷吸附等温线显示出较高的总重量和体积CH4吸收量,分别在85 bar和298 K时达到372 cm3(STP)g-1和221 cm3(STP)cm-3。相应的工作容量在5-80 bar之间被发现为294 cm3(STP)g-1和175 cm3(STP)cm-3,并且被放置在用于CH4存储的性能最好的MOF之中,尤其是在相对较低的温度下(例如326 cm3(STP)g-1和194 cm3 (STP)cm-3在258 K时)。为了更好地理解结构与性质的关系并深入了解导致CH4储存能力增强的机理,进行了分子模拟研究,发现有机连接基附近存在非常强的CH4吸附位,其吸附能与开放的金属场所。本研究结果支持基于超分子建筑层(SBL)方法的tbo-MOFs作为通过四角柱的扩展和功能化进一步增强CH4储存能力的理想平台的潜力。

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