Articles & Issues
- Language
- English
- Conflict of Interest
- In relation to this article, we declare that there is no conflict of interest.
- Publication history
-
Received February 14, 2026
Accepted April 16, 2026
Available online August 25, 2026
-
This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0) which permits
unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
Latest issues
Solvent-Engineered Extraction of Ziziphus Mauritiana Essential Oils as Functional Antimicrobial Additives for Antimicrobial Coatings and Packaging Systems
https://doi.org/10.1007/s11814-026-00730-2
Abstract
Bio-derived antimicrobial additives are gaining significant attention for functional polymer materials, including antimicrobial
coatings, packaging films, and surface-engineered composites. In such macromolecular systems, the extraction
chemistry is a critical factor as it governs the molecular functionality, polarity balance, and subsequent compatibility
with polymer matrices. This study demonstrates a solvent-controlled Soxhlet extraction strategy using mixed hexane–
ethanol systems (4:6, 6:4, and 7:3 ratios) to tailor the chemical characteristics of Ziziphus mauritiana essential oils for
materials-oriented applications. A hexane–ethanol ratio of 6:4 produced a markedly enhanced oil yield of 39.8%, attributed
to optimized solvent–matrix interactions enabling the simultaneous recovery of nonpolar lipid components and polar
oxygenated compounds. FT-IR analysis revealed a balanced distribution of functional groups, indicating strong potential
for intermolecular interactions relevant to polymer compatibility and dispersion stability. Gas chromatography–mass spectrometry
(GC‑MS) analysis identified the presence of major plant-derived constituents such as phytol, squalene, fatty acid
ethyl esters, and minor oxygenated terpenoids. Scanning electron microscopy (SEM) and optical microscopy provided
mechanistic insights into mass transport, revealing solvent-dependent disruption of the plant matrix that facilitates the
release of active species. The optimized bio-additive exhibited superior antibacterial activity against both Gram-positive
and Gram-negative bacteria, alongside concentration-dependent antifungal performance. These findings highlight the role
of solvent engineering as a robust materials design strategy for tailoring bio-derived additives, supporting their integration
into sustainable and high-performance antimicrobial polymer systems.

