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Prof. Sivanesan Subramanian

Anna University, India

 

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Home > Archives > Vol. 9 No. 3(Publishing) > Review Article
ACE-6054

Published

2026-09-30

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Vol. 9 No. 3(Publishing)

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Review Article

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Copyright (c) 2026 Huifang Yang, Manus KAEWBUCHA, Chalisa APIWATHNASORN

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How to Cite

Huifang Yang, Manus KAEWBUCHA, & Chalisa APIWATHNASORN. (2026). Microencapsulation of Forsythia suspensa Essential Oil Based on Complex Coacervation. Applied Chemical Engineering, 9(3), ACE-6054. https://doi.org/10.59429/ace.v9i3.6054
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Microencapsulation of Forsythia suspensa Essential Oil Based on Complex Coacervation

Huifang Yang

Chakrabongse Bhuvanarth International College of Interdisciplinary Studies (CBIS), Rajamangala University of Technology Tawan-Ok, Bangkok, Thailand 10400

Manus KAEWBUCHA

Chakrabongse Bhuvanarth International College of Interdisciplinary Studies (CBIS), Rajamangala University of Technology Tawan-Ok, Bangkok, Thailand 10400

Chalisa APIWATHNASORN

Faculty of Fine and Applied Arts, Rajamangala University of Technology Thanyaburi, Khlong Luang, Pathum Thani, Thailand 12110


DOI: https://doi.org/10.59429/ace.v9i3.6054


Keywords: Forsythia suspensa essential oil; complex coacervation; gelatin wall material; encapsulation efficiency; Box–Behnken optimisation; sustained release; transglutaminase crosslinking; textile finishing


Abstract

Plant essential oils possess valuable antibacterial and antioxidant properties, but their high volatility and chemical instability severely limit their direct use in functional materials. In this study, Forsythia suspensa essential oil was successfully encapsulated within a gelatin wall material by complex coacervation, with sodium hexa-metaphosphate as a coacervation promoter and transglutaminase as a green crosslinking agent. The influence of the core-to-wall ratio, coacervation temperature, pH and stirring speed on the encapsulation efficiency was first evaluated through single-factor experiments, after which a three-factor, three-level Box–Behnken design was employed to optimize the dominant variables. A reduced hierarchical quadratic model was statistically significant (p = 0.0084; R² = 0.7724; adjusted R² = 0.6359), with the response governed primarily by significant quadratic curvature in all three variables; the individual linear effects were not statistically significant and were therefore not ranked. Under the optimised conditions of a core-to-wall ratio of 1:1.1, a temperature of 39 °C and a pH of 4.69, a predicted encapsulation efficiency of 97.52% was obtained. The resulting microcapsules displayed a particle size distribution of 0.25–10 µm (D90 = 4.76 µm) and a zeta potential of −32.25 mV, indicating appreciable electrostatic repulsion. SEM and AFM analyses revealed predominantly rounded micron-scale particles with smooth continuous surfaces (mean diameter 2.38 µm; RMS roughness 1.245 nm). Microcapsules displayed clear sustained-release behaviour and were successfully deposited onto cotton and linen textiles by a pad–dry–cure process.


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