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    Development of intelligent packaging from xyloglucan-chitosan modified film with betalains from dragon fruit (Hylocereus undatus) peels
    (2025-06-01)
    Permana, Lasuardi
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    Sriprom, Pongsert
    ;
    Narkrugsa, Woatthichai
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    Manamoongmongkol, Kanjana
    ;
    Assawasaengrat, Pornsawan
    This study aimed to develop intelligent packaging films by, incorporating extracted betalain (EB) from dragon fruit peel into a tamarind seed kernel xyloglucan and chitosan blend (XC). The film were comprehensively characterized for their chemical, physical, mechanical, antimicrobial, and functional properties. Zeta potential and Fourier transform infrared (FTIR) spectroscopy confirmed that the interaction between xyloglucan, chitosan, and betalain were governed by ionic interactions and hydrogen bonding, which stabilized the colloidal network and influenced film microstructure. Increasing betalain concentration enhance film thickness and color intensity with scanning electron microscopy (SEM) revealing uniform surface morphology. Mechanical testing demonstrated that film with a 1:5 (w/v) EB:EC ratio achieved optimal performance balancing tensile strength (22.35 ± 2.25 MPa) and an elongation at break (185.07 ± 4.42 %). The films exhibited suitable barrier properties, with water vapor transmission rate (WVTR) and water vapor peameability (WVP) aligning with food packaging requirements. Antimicrobial assay revealed good activity against Escherichia coli and Staphylococcus aureus, while ammonia sensitivity test demonstrated the ability of film to detect spoilage via visible colorimetric shifts, correlating with total volatile base nitrogen (TVB-N) levels in shrimp. This study highlight the potential of XC-EB films as sustainable, intelligent packaging solutions for monitoring the protein-rich food freshness, leveraging agricultural byproduct to enhance food safety and reduce waste.
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    Item type:Publication,
    Advanced chitosan hybrid dye labels for dynamic monitoring of shrimp and milk freshness
    (2025-04-01)
    Ronte, Arnat
    ;
    Chalitangkoon, Jongjit
    ;
    Sintoppun, Tanaporn
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    Niemhom, Nantawan
    ;
    Manapradit, Nuttaporn
    This study presents the development of intelligent screen-printed labels for real-time food freshness monitoring. Using chitosan grafted with rosolic acid (RA) and immobilized on montmorillonite (MMT) through cationic exchange, a hybrid dye was synthesized and applied in screen-printing inks. The hybrid structure was characterized by XRD, TGA, and UV–vis, confirming improved thermal stability and maintained halochromic properties. SEM analysis showed consistent ink deposition on filter paper, while water contact angle (WCA) measurements demonstrated enhanced surface hydrophobicity due to the MMT. The labels exhibited clear pH-sensitive color transitions from yellow to purplish red (pH 2.0–12.0) and rapid ammonia sensitivity, with ΔE values exceeding 45.0 within 10 min. The labels also demonstrated excellent reversibility, storage stability, leaching resistance, and cytocompatibility. Practical tests on shrimp and milk confirmed the labels' ability to accurately monitor freshness through visible color changes. These findings highlight the potential of hybrid labels as effective, scalable freshness indicators for intelligent food packaging.
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    Item type:Publication,
    Development of a pH-responsive intelligent label using low molecular weight chitosan grafted with phenol red for food packaging applications
    (2024-05-01)
    Ronte, Arnat
    ;
    Chalitangkoon, Jongjit
    ;
    Foster, E. Johan
    ;
    Monvisade, Pathavuth
    In this study, we successfully developed a screen-printed pH-responsive intelligent label using low molecular weight chitosan grafted with phenol red (LCPR) as a colorant for screen printing ink. The LCPR was synthesized via a Mannich reaction, and its successful grafting was confirmed through FT-IR, UV–vis, and NMR spectroscopy. The LCPR exhibited lower crystallinity and thermal stability compared to low molecular weight chitosan (LC) and demonstrated zwitterionic behavior. To create intelligent labels, the LCPR-based ink was efficiently printed on cotton substrates with high resolution. The label exhibited remarkable sensitivity to buffer pH solutions and ammonia gas, leading to distinctive color changes from orange to red to purple. Additionally, the label showed excellent reversibility, storage stability, and leaching resistance to different food simulant solutions. The label was utilized to monitor shrimp freshness, successfully detecting a noticeable color shift upon spoilage. These findings highlight the significant potential of the LCPR-based label as an intelligent food packaging solution, offering pH-responsiveness and color stability for qualitative freshness detection of protein-rich food.