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February 14, 2026Langmuir0 citations

Quantifying Polydopamine Shell Hydration in Core–Shell Colloids by Analytical Ultracentrifugation: Implications for Self-Assembly and Structural Color of Photonic Crystals

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PLP. Cardenas LopezAYAlexander E. YarawskyMBMichelle Berthold

Key Points

  • The aim is to investigate how the hydration of polydopamine (PDA) shells affects the structural properties of colloidal photonic crystals.
  • Combine sedimentation velocity (SV) and buoyant density gradient equilibrium (DGE) experiments using analytical ultracentrifugation (AUC).
  • Measure densities in water-deuterium oxide mixtures to determine anhydrous density.
  • Use sucrose gradient to evaluate buoyant density at isopycnic position.
  • Perform mass balance analysis to quantify water incorporated in the PDA shells.
  • PDA shell hydration increases with shell thickness and is influenced by shell formation parameters.
  • Decreased structural order and photonic properties in colloidal crystals correlate with increased shell thickness.
  • Increased swelling of the PDA shell promotes aggregation during self-assembly, disrupting structural order.

Abstract

Polystyrene-polydopamine (PS@PDA) core-shell particles are widely used as building blocks to form colloidal photonic crystals with tunable light absorption. Increasing the PDA shell thickness typically leads to more saturated colors but also diminishes the structural order of the resulting assemblies. To understand this phenomenon, we correlate particle properties in solution with the structural properties of the formed colloidal crystals. In particular, we focus on correlating the water swellability of the PDA shell with the agglomeration behavior upon drying. To this end, we combine density variation sedimentation velocity (SV) and buoyant density gradient equilibrium (DGE) experiments in analytical ultracentrifugation (AUC) to quantify the hydration of the PDA shell. Density variation SV-AUC in H2O-D2O mixtures yields the particle's anhydrous density, while DGE-AUC, using an in situ formed sucrose gradient, reveals the buoyant density at the isopycnic position in the measurement cell. Mass balance analysis then enables quantification of the water mass incorporated within the PDA shell. These combined experiments show that PDA shell hydration generally increases with shell thickness and depends on the reaction parameters chosen for the shell formation process. The structural order and photonic properties of colloidal crystals formed from the different PS@PDA particles decrease with increasing shell thickness, indicating that more swollen shells promote aggregation during self-assembly and thus disturb structural order. Advanced AUC experiments therefore provide access to key physicochemical characteristics of functional colloids and establish valuable process-structure-property relations for the design of colloidal photonic crystals.

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Cite This Study

Lopez et al. (2026) studied this question.

synapsesocial.com/papers/699011712ccff479cfe58155https://doi.org/10.1021/acs.langmuir.5c06504
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Influence of Core Surface Properties on the Formation of Liquid Photonic Crystals Based on Core–Shell Particles2026 · 1 citations
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  3. 3Molecular Investigation of the Self-Assembly Mechanism Underlying Polydopamine Coatings: The Synergistic Effect of Typical Building Blocks Acting on Interfacial Adhesion2024 · 9 citations
  4. 4Shell Thickness Dictates Electrolyte Concentration-Mediated Rheology Behavior of Core–Shell Nanoparticles Adsorbed at an Interface2025
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