Literature DB >> 24151906

Selective NO trapping in the pores of chain-type complex assemblies based on electronically activated paddlewheel-type [Ru2(II,II)]/[Rh2(II,II)] dimers.

Wataru Kosaka1, Kayo Yamagishi, Akihiro Hori, Hiroshi Sato, Ryotaro Matsuda, Susumu Kitagawa, Masaki Takata, Hitoshi Miyasaka.   

Abstract

The design of porous materials that undergo selective adsorption of a specific molecule is a critical issue in research on porous coordination polymers or metal-organic frameworks. For the purpose of the selective capture of molecules possessing an electron-acceptor character such as nitric oxide (NO), one-dimensional chain compounds possessing a high donor character have been synthesized using 4-chloroanisate-bridged paddlewheel-type dimetal(II, II) complexes with M = Ru and Rh and phenazine (phz) as the chain linker: [M2(4-Cl-2-OMePhCO2)4(phz)]·n(CH2Cl2) (M = Ru, 1; Rh, 2). These compounds are isostructural and are composed of chains with a [-{M2}-phz-] repeating unit and CH2Cl2 occupying the void space between the chains. Compounds 1 and 2 change to a new phase (1-dry and 2-dry) upon evacuating the crystallization solvent (CH2Cl2) and almost lose their pores in the drying process: no void space in 1-dry and 31.8 Å(3), corresponding to 2.9% of the cell volume, in 2-dry. Nevertheless, the compounds show a unique gas accommodation ability. Accompanied by a structural transformation (i.e., the first gate-opening) at low pressures of <10 kPa, both compounds show a typical physisorption isotherm for O2 (90 K) and CO2 (195 K), with the adsorption amount of ca. 2-4 gas molecules per [M2] unit. In addition, the adsorption isotherm for NO (121 K) involves the first gate-opening followed by a second gate-opening anomaly at NO pressures of ≈52 kPa for 1-dry and ≈21 kPa for 2-dry. At the first gate-opening, the absorbed amount of NO is ca. 4 molecules per [M2] unit, and then it reaches 8.4 and 6.3 for 1-dry and 2-dry, respectively, at 95 kPa. Only the isotherm for NO exhibits hysteresis in the desorption process, and some of the NO molecules are trapped in pores even after evacuating at 121 K, although it recovers to the original dried sample on heating to room temperature. The adsorbed NO molecules accrue a significant electron donation from the host framework even in the [Rh2] derivative, indicating that such simple porous compounds with electron-donor characteristics are useful for the selective adsorption of NO.

Entities:  

Year:  2013        PMID: 24151906     DOI: 10.1021/ja4076056

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  4 in total

1.  Coordination polymer flexibility leads to polymorphism and enables a crystalline solid-vapour reaction: a multi-technique mechanistic study.

Authors:  Iñigo J Vitórica-Yrezábal; Stefano Libri; Jason R Loader; Guillermo Mínguez Espallargas; Michael Hippler; Ashleigh J Fletcher; Stephen P Thompson; John E Warren; Daniele Musumeci; Michael D Ward; Lee Brammer
Journal:  Chemistry       Date:  2015-05-11       Impact factor: 5.236

2.  Gas-responsive porous magnet distinguishes the electron spin of molecular oxygen.

Authors:  Wataru Kosaka; Zhaoyuan Liu; Jun Zhang; Yohei Sato; Akihiro Hori; Ryotaro Matsuda; Susumu Kitagawa; Hitoshi Miyasaka
Journal:  Nat Commun       Date:  2018-12-21       Impact factor: 14.919

3.  Crystallographic studies of gas sorption in metal-organic frameworks.

Authors:  Elliot J Carrington; Iñigo J Vitórica-Yrezábal; Lee Brammer
Journal:  Acta Crystallogr B Struct Sci Cryst Eng Mater       Date:  2014-05-24

4.  Magnetic Sponge with Neutral-Ionic Phase Transitions.

Authors:  Wataru Kosaka; Yusuke Takahashi; Masaki Nishio; Keisuke Narushima; Hiroki Fukunaga; Hitoshi Miyasaka
Journal:  Adv Sci (Weinh)       Date:  2017-12-04       Impact factor: 16.806

  4 in total

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