Oligomeric ferrocene rings
Author(s) -
Michael S. Inkpen,
Stefan Scheerer,
Michael Linseis,
Andrew J. P. White,
Rainer F. Winter,
Tim Albrecht,
Nicholas J. Long
Publication year - 2016
Publication title -
nature chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 9.996
H-Index - 232
eISSN - 1755-4349
pISSN - 1755-4330
DOI - 10.1038/nchem.2553
Subject(s) - chemistry , ferrocene , cyclopentadienyl complex , intramolecular force , ring (chemistry) , molecule , redox , covalent bond , monomer , crystallography , chemical physics , electron transfer , charge (physics) , nanoscopic scale , computational chemistry , nanotechnology , electrochemistry , stereochemistry , photochemistry , electrode , inorganic chemistry , organic chemistry , quantum mechanics , physics , polymer , materials science , catalysis
Cyclic oligomers comprising strongly interacting redox-active monomer units represent an unknown, yet highly desirable class of nanoscale materials. Here we describe the synthesis and properties of the first family of molecules belonging to this compound category-differently sized rings comprising only 1,1'-disubstituted ferrocene units (cyclo[n], n = 5-7, 9). Due to the close proximity and connectivity of centres (covalent Cp-Cp linkages; Cp = cyclopentadienyl) solution voltammograms exhibit well-resolved, separated 1e(-) waves. Theoretical interrogations into correlations based on ring size and charge state are facilitated using values of the equilibrium potentials of these transitions, as well as their relative spacing. As the interaction free energies between the redox centres scale linearly with overall ring charge and in conjunction with fast intramolecular electron transfer (∼10(7) s(-1)), these molecules can be considered as uniformly charged nanorings (diameter ∼1-2 nm).
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