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March 21, 2026Macromolecules1 citationsOpen Access

Supramolecular Assembly of End-Functionalized Polystyrene and Polydimethylsiloxane with Hybrid Nanostructures

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JQJingchao QinWLWhitney S. Loo

Key Points

  • Investigate the self-assembly and phase behavior of blends of oppositely charged polystyrene and polydimethylsiloxane polymers with various molecular weights.
  • Synthesis of monosulfonated-terminated polystyrene and monopiperidine-terminated PDMS.
  • Development of a new synthetic route for PDMS using a functionalized initiator.
  • Measurement of nanostructures using small-angle X-ray scattering (SAXS) across different temperatures.
  • Application of Tanaka's model to analyze the heteroassociation fraction and effective interaction parameter.
  • Disordered structures observed in low molecular weight blends.
  • High molecular weight blends exhibited various hybrid ordered nanostructures.
  • Phase transitions induced by tuning the mixing ratio of polymers, leading to long-range ordered structures.

Abstract

Blends of oppositely charged polymers are capable of self-assembling into well-ordered nanostructures via supramolecular self-assembly. A series of monosulfonated-terminated polystyrene (PS) and monopiperidine–terminated poly(dimethylsiloxane) (PDMS) polymers with different molecular weights were synthesized and blended to investigate their phase behavior. A new synthetic route for piperidine-terminated PDMS with low dispersity and high end-group fidelity was developed based on a functionalized initiator accessible from commercially available reagents and compatible with anionic ring-opening polymerization. The resulting nanostructure of the blends was measured via small-angle X-ray scattering (SAXS) performed across a range of temperatures and revealed disordered structures in blends prepared with low molecular weight polymers. A model derived by Tanaka using the random phase approximation (RPA) was applied to extract the heteroassociation fraction (z) and effective interaction parameter (χeff), and a quantitatively similar value of z was observed across all blends with disordered morphologies. High molecular weight blends exhibited a variety of hybrid ordered nanostructures, and by precisely tuning the mixing ratio, we were able to induce phase transitions and achieve a variety of ordered nanostructures with long-range order. A molecular-scale mechanism to balance the electrostatic strength of end group association and segregation strength between the constituent polymers is proposed to rationalize the observed phase behavior.

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Cite This Study

Qin et al. (2026) studied this question.

synapsesocial.com/papers/69be35166e48c4981c67338bhttps://doi.org/10.1021/acs.macromol.5c03429
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