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March 19, 2026Materials & Design0 citationsOpen Access

Design of one-shot graded foams as tunable delivery systems

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PTPaolo TrucilloPAPietro Renato AvalloneEMErnesto Di Maio

Key Points

  • The research aims to develop a graded foam system for tunable drug release in oral applications.
  • Fabrication of graded polycaprolactone foams through CO2-assisted physical foaming.
  • Control of foam morphology to create a gradient in porosity for diffusion pathways.
  • Incorporation of curcumin as a model compound with high encapsulation efficiency.
  • Drug release kinetics analyzed using a five-parameter diffusion/erosion model.
  • Encapsulation efficiencies for curcumin exceeded 95%.
  • Pore size transitioned from approximately 70 µm to 170 µm from the outer to inner layers.
  • Observed a two-stage drug release behavior influenced by diffusion and polymer degradation.
  • Release rates inversely correlated with pore size, supporting the design's impact on transport.
  • Kinetic model accurately predicted cumulative release up to 200 hours.

Abstract

• One-shot CO 2 foaming enables graded PCL tablet architectures. • Graded foams devices enable controlled drug release for oral delivery. • Blowing agent release does not affect curcumin entrapment ( > 95 % ). • Two-stage release phenomena fitted by five-parameter diffusion/erosion model. Uniform and graded polycaprolactone tablet foams were fabricated through CO 2 -assisted physical foaming, providing a tunable material platform for controlling mass transport in functional delivery systems. Foam morphology was engineered with a controlled porosity gradient to regulate diffusion pathways through interconnected pores. A thermally stable model compound was incorporated at 1–10 (w/w, %) with encapsulation efficiencies above 95%. Morphological analysis by SEM revealed a systematic pore size transition from roughly 70 µm at the external layer to roughly 170 µm at the inner core, directly correlated with the applied saturation pressure. Drug release experiments demonstrated a two-stage kinetic behavior, governed initially by gradient-dependent diffusion followed by polymer degradation after a characteristic lag time, τ. The release rate scaled inversely with pore size, confirming the role of structural design in transport modulation. A five-parameter kinetic model was developed, integrating diffusion and pH-dependent degradation, and accurately predicting cumulative release up to 200 h. This study establishes a morphology-driven design approach for graded polymer foams, enabling predictive control of transport phenomena and offering a rational framework for the design of sustained-release materials and other porous functional systems.

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Cite This Study

Trucillo et al. (2026) studied this question.

synapsesocial.com/papers/69bb9321496e729e6298112ehttps://doi.org/10.1016/j.matdes.2026.115844
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