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February 8, 2026Journal of the American Chemical Society3 citationsOpen Access

Transient Salt-Bridge-Based Supramolecular Polymers: Experiments and Theory

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GMGabriele MelchiorreMVMatteo ValentiniFRFrancesco Ranieri

Key Points

  • This research aims to explore the formation and behavior of transient supramolecular polymers using activated carboxylic acids.
  • Synthesis of supramolecular polymers from aliphatic diamines and activated dicarboxylic acids.
  • Utilization of DOSY spectroscopy to monitor polymerization and disaggregation over time.
  • Application of ring-chain equilibrium theory to assess polymer distribution and critical concentration.
  • Supramolecular polymers formed rapidly in chloroform with high degrees of polymerization linked to higher monomer concentration.
  • The polymers disaggregated over time due to decarboxylation, resulting in residual diamines and waste products.
  • The study clarified the relationship between polymerization degree and monomer concentration through theoretical modeling.

Abstract

The smooth decarboxylation under basic conditions of activated carboxylic acids (ACAs) is exploited to achieve a transient supramolecular polymer based on hydrogen bonds reinforced by electrostatic interactions. In particular, it is proved that when the aliphatic α,ω-diamine 3, namely, 1,8-diamino-3,6-dioxaoctane, reacts with an equimolar amount of the activated dicarboxylic acid 1H2, i.e., a difunctional derivative of 2-cyano-2-phenylpropanoic acid, a supramolecular polymer of the kind -AB─BA─AB- is immediately formed in chloroform solution. The A─A and B─B monomers are held together by salt bridges (hydrogen bonds reinforced by electrostatic interactions) between ammonium and carboxylate functions. The larger the concentration of the added materials, the higher the polymerization degree (DP) of the polymer. Under the given experimental protocol, such a polymer disaggregates over time due to decarboxylation, and at the end of the process, only diamine 3 and waste product 4, which cannot interact with one another anymore, remain in the solutions. DOSY spectra recorded at different reaction times definitely demonstrate the phenomenology described above. The trend of the degree of polymerization as a function of monomer concentration has been clarified in the light of the ring-chain equilibrium theory. The application of the theory enables the accurate evaluation of the distribution of linear and cyclic oligomers as well as the critical concentration, ccrit, above which polymerization rapidly becomes more extensive due to the saturation of macrocyclic species. Notably, the ACA is not used just as a stimulus for a dissipative system, but as one of its structural components.

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Cite This Study

Melchiorre et al. (2026) studied this question.

synapsesocial.com/papers/6988270a0fc35cd7a8845ed6https://doi.org/10.1021/jacs.5c22087
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