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Title: Iron in a Cage: Fixation of a Fe(II)tpy 2 Complex by Fourfold Interlinking
Abstract

The coordination sphere of the Fe(II) terpyridine complex1is rigidified by fourfold interlinking of both terpyridine ligands. Profiting from an octa‐aldehyde precursor complex, the ideal dimensions of the interlinking structures are determined by reversible Schiff‐base formation, before irreversible Wittig olefination provided the rigidified complex. Reversed‐phase HPLC enables the isolation of the all‐transisomer of the Fe(II) terpyridine complex1, which is fully characterized. While temperature independent low‐spin states were recorded with superconducting quantum interference device (SQUID) measurements for both, the open precursor8and the interlinked complex1, evidence of the increased rigidity of the ligand sphere in1was provided by proton T2relaxation NMR experiments. The ligand sphere fixation in the macrocyclized complex1even reaches a level resisting substantial deformation upon deposition on an Au(111) surface, as demonstrated by its pristine form in a low temperature ultra‐high vacuum scanning tunneling microscope experiment.

 
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NSF-PAR ID:
10165994
Author(s) / Creator(s):
 ;  ;  ;  ;  ;  ;  ;  ;  ;  
Publisher / Repository:
Wiley Blackwell (John Wiley & Sons)
Date Published:
Journal Name:
Angewandte Chemie
Volume:
132
Issue:
37
ISSN:
0044-8249
Format(s):
Medium: X Size: p. 16081-16086
Size(s):
["p. 16081-16086"]
Sponsoring Org:
National Science Foundation
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    Coordinatively driven self‐assembly of transition metal ions and bidentate ligands gives rise to organometallic complexes that usually contain superimposed isobars, isomers, and conformers. In this study, the double dispersion ability of ion mobility mass spectrometry (IM‐MS) was used to provide a comprehensive structural characterization of the self‐assembled supramolecular complexes by their mass and charge, revealed by the MS event, and their shape and collision cross‐section (Ω), revealed by the IM event.

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