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离散钯(II)[Pd (L) ]笼的固态气体吸附研究

Solid-State Gas Adsorption Studies with Discrete Palladium(II) [Pd (L) ] Cages.

作者信息

Preston Dan, White Keith F, Lewis James E M, Vasdev Roan A S, Abrahams Brendan F, Crowley James D

机构信息

Department of Chemistry, University of Otago, PO Box 56, Dunedin, New Zealand.

School of Chemistry, University of Melbourne, Melbourne, Victoria, 3010, Australia.

出版信息

Chemistry. 2017 Aug 4;23(44):10559-10567. doi: 10.1002/chem.201701477. Epub 2017 Jun 27.

Abstract

The need for effective CO capture systems remains high, and due to their tunability, metallosupramolecular architectures are an attractive option for gas sorption. While the use of extended metal organic frameworks for gas adsorption has been extensively explored, the exploitation of discrete metallocage architectures to bind gases remains in its infancy. Herein the solid state gas adsorption properties of a series of [Pd (L) ] lantern shaped coordination cages (L = variants of 2,6-bis(pyridin-3-ylethynyl)pyridine), which had solvent accessible internal cavities suitable for gas binding, have been investigated. The cages showed little interaction with dinitrogen gas but were able to take up CO . The best performing cage reversibly sorbed 1.4 mol CO per mol cage at 298 K, and 2.3 mol CO per mol cage at 258 K (1 bar). The enthalpy of binding was calculated to be 25-35 kJ mol , across the number of equivalents bound, while DFT calculations on the CO binding in the cage gave ΔE for the cage-CO interaction of 23-28 kJ mol , across the same range. DFT modelling suggested that the binding mode is a hydrogen bond between the carbonyl oxygen of CO and the internally directed hydrogen atoms of the cage.

摘要

对高效二氧化碳捕集系统的需求仍然很高,由于其可调性,金属超分子结构是气体吸附的一个有吸引力的选择。虽然扩展金属有机框架用于气体吸附已得到广泛研究,但利用离散金属笼状结构来结合气体仍处于起步阶段。在此,研究了一系列[Pd(L)]灯笼形配位笼(L = 2,6-双(吡啶-3-基乙炔基)吡啶的变体)的固态气体吸附性能,这些笼子具有适合气体结合的溶剂可及内腔。这些笼子与氮气几乎没有相互作用,但能够吸收二氧化碳。性能最佳的笼子在298 K时每摩尔笼子可逆吸附1.4摩尔二氧化碳,在258 K(1巴)时每摩尔笼子可逆吸附2.3摩尔二氧化碳。计算得出的结合焓在整个结合当量范围内为25 - 35 kJ·mol⁻¹,而对笼子中二氧化碳结合的密度泛函理论(DFT)计算得出在相同范围内笼子 - 二氧化碳相互作用的ΔE为23 - 28 kJ·mol⁻¹。DFT建模表明,结合模式是二氧化碳的羰基氧与笼子内部指向的氢原子之间的氢键。

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