4.6 Article

Coordination Polymer Flexibility Leads to Polymorphism and Enables a Crystalline Solid-Vapour Reaction: A Multi-technique Mechanistic Study

Journal

CHEMISTRY-A EUROPEAN JOURNAL
Volume 21, Issue 24, Pages 8799-8811

Publisher

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

Funding

  1. Engineering and Physical Sciences Research Council
  2. Cambridge Crystallographic Data Centre
  3. Science and Technology Funding Council
  4. White Rose Consortium of University of Sheffield
  5. White Rose Consortium of University of Leeds
  6. White Rose Consortium of University of York
  7. Nuffield Foundation
  8. Materials Research Science and Engineering Center (MRSEC) program of the National Science Foundation [DMR-0820341, DMR-1420073]
  9. Spanish MINECO
  10. EPSRC [EP/F02195X/1] Funding Source: UKRI
  11. Engineering and Physical Sciences Research Council [GR/T26047/01, EP/F02195X/1] Funding Source: researchfish

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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.

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