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March 3, 2026Food Biophysics2 citationsOpen Access

Green Design of Cellulose Nanocrystal-Stabilized Pickering Nanoemulsions: Molecular Interactions, Long-term Stability, and Functional Delivery of Ginger Essential Oil

SOSamuel Olugbenga OlunusiNRNor Hanuni RamliFAFatmawati Adam

Key Points

  • CNC-GEO nanoemulsions demonstrated >99.7% encapsulation efficiency, enhancing the delivery of ginger essential oil effectively.
  • The optimal formulation at 1.0 wt% resulted in small droplet size (~34.7 nm) and high zeta potential (–34.8 mV), indicating stability.
  • Analysis included interfacial interactions and release kinetics, highlighting how CNC concentration influenced ginger essential oil availability.
  • Utilizing cellulose nanocrystals as stabilizers may enable scalable, polymer-free nanoemulsions for various applications, including nutraceuticals.

Abstract

This work demonstrates a sustainable strategy for stabilizing and functionalizing ginger essential oil (GEO) Pickering nanoemulsions using cellulose nanocrystals (CNCs) derived from microcrystalline cellulose via a green deep eutectic solvent (DES) system. The CNCs were isolated with a high yield (95.87%) and exhibited notable crystallinity (52.74%), nanoscale morphology ( 99.7% encapsulation efficiency, as well as superior resistance to centrifugal, thermal, and freeze–thaw stress. Release studies confirmed that CNC concentration governed GEO availability: higher CNC loadings enhanced network density but slowed diffusion and reduced antioxidant efficiency. At the same time, moderate levels promoted bioactive release and stronger radical scavenging. Antibacterial assays confirmed selective inhibition, with Gram-positive S. aureus being more susceptible than Gram-negative E. coli, reflecting a distinct envelope structure. SEM and EDX analyses further revealed that CNC-GEO emulsions caused oxidative damage, membrane disruption, and elemental leakage. Collectively, these results highlight CNCs as multifunctional, food-grade stabilizers that couple structural stability with tunable bioactivity, offering a scalable route to polymer-free nanoemulsions for food preservation, nutraceutical, and pharmaceutical applications.

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Cite This Study

Olunusi et al. (2026) studied this question.

synapsesocial.com/papers/69a75b66c6e9836116a22a5ehttps://doi.org/10.1007/s11483-025-10100-w
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