Journal
CHEMISTRY-A EUROPEAN JOURNAL
Volume 21, Issue 24, Pages 8799-8811Publisher
WILEY-V C H VERLAG GMBH
DOI: 10.1002/chem.201500514
Keywords
coordination polymers; gas-phase spectroscopy; in situ diffraction; microscopy; polymorphism; porosity; solid-state reactions; thermal analysis
Categories
Funding
- Engineering and Physical Sciences Research Council
- Cambridge Crystallographic Data Centre
- Science and Technology Funding Council
- White Rose Consortium of University of Sheffield
- White Rose Consortium of University of Leeds
- White Rose Consortium of University of York
- Nuffield Foundation
- Materials Research Science and Engineering Center (MRSEC) program of the National Science Foundation [DMR-0820341, DMR-1420073]
- Spanish MINECO
- EPSRC [EP/F02195X/1] Funding Source: UKRI
- Engineering and Physical Sciences Research Council [GR/T26047/01, EP/F02195X/1] Funding Source: researchfish
Ask authors/readers for more resources
Despite an absence of conventional porosity, the 1D coordination polymer [Ag-4(O2C(CF2)(2)CF3)(4)(TMP)(3)] (1; TMP=tetramethylpyrazine) can absorb small alcohols from the vapour phase, which insert into AgO bonds to yield coordination polymers [Ag-4(O2C(CF2)(2)CF3)(4)(TMP)(3)(ROH)(2)] (1-ROH; R=Me, Et, iPr). The reactions are reversible single-crystal-to-single-crystal transformations. Vapour-solid equilibria have been examined by gas-phase IR spectroscopy (K=5.68(9)x10(-5) (MeOH), 9.5(3)x10(-6) (EtOH), 6.14(5)x10(-5) (iPrOH) at 295K, 1bar). Thermal analyses (TGA, DSC) have enabled quantitative comparison of two-step reactions 1-ROH12, in which 2 is the 2D coordination polymer [Ag-4(O2C(CF2)(2)CF3)(4)(TMP)(2)] formed by loss of TMP ligands exclusively from singly-bridging sites. Four polymorphic forms of 1 (1-A(LT), 1-A(HT), 1-B-LT and 1-B-HT; HT=high temperature, LT=low temperature) have been identified crystallographically. In situ powder X-ray diffraction (PXRD) studies of the 1-ROH12 transformations indicate the role of the HT polymorphs in these reactions. The structural relationship between polymorphs, involving changes in conformation of perfluoroalkyl chains and a change in orientation of entire polymers (A versus B forms), suggests a mechanism for the observed reactions and a pathway for guest transport within the fluorous layers. Consistent with this pathway, optical microscopy and AFM studies on single crystals of 1-MeOH/1-A(HT) show that cracks parallel to the layers of interdigitated perfluoroalkyl chains develop during the MeOH release/uptake process.
Authors
I am an author on this paper
Click your name to claim this paper and add it to your profile.
Reviews
Recommended
No Data Available