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Updated: Mar 25, 2026

Structure and Coordination Determination of Peptide-metal Complexes Using 1D and 2D 1H NMR
Published on: December 16, 2013
Computational prediction of optimal metal ions to induce coordinated polymerization of muscle-like [c2]daisy chains
Yan-Ling Zhao1, Rui-Qin Zhang2, Christian Minot3
1Institute of Computational and Theoretical Studies & Department of Physics, Hong Kong Baptist University, Hong Kong, China. ylzhao2008@gmail.com.
Abstract:
Recently, a muscle-like organometallic polymer has been successfully synthesized using Fe(2+) as a linker atom. The polymer exhibits acid-base controllable muscle-like expansion and contraction on the micrometer scale. Further development could be facilitated by revealing the polymerization mechanism and by searching for optimal linker atoms. In this work, we have examined possible equilibrium and intermediate polymer structures, which consist of [c2]daisy chains linked by divalent transition metal ions (Sc(2+), Ti(2+), Fe(2+), Co(2+), Ni(2+) or Zn(2+)) with various hexa-coordination arrangements, based on calculations using density functional theory. We find that the metal linkers in polymers are weaker in acid than in base due to excess positive charges on the polymer, leading to their thermodynamical instability or even decomposition. This can explain the experimental difficulty in improving the degree of polymerization for metal-linked polymers. We also find that the polymers with either Fe(2+) or Co(2+) are the most favorable, with the latter extending 1.4% longer than with the former. Since Fe(2+) has been confirmed experimentally to be a successful linker, Co(2+) would function equally well and thus could be used as an alternative choice for polymerization.
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