KMITL
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Item type:Publication, Monitoring of organochlorine pesticide residues in school milk and associated health risk assessment in Thailand(2026-06-01) ;Cha-aim, Chatartorn ;Manamoongmongkol, Kanjana ;Nisapai, Wiparat ;Phumjan, LamphungOomnog, NirothSchool milk products are recognized as an important and affordable food source for Thai people, particularly students. However, milk was classified as an agricultural product in which organochlorine pesticide (OCP) residues can be detected due to its fat content. This study investigated the levels of organochlorine pesticides in school milk products, including raw milk, pasteurized milk, and UHT milk, using the QuEChERS method. The fat content of these three types of milk was 3.50%, 3.03%, and 3.33%, respectively. A correlation coefficient (R<sup>2</sup>) of 0.9953–0.9998 confirmed the validity of the QuEChERS method. The limit of detection (LOD) for each pesticide ranged from 0.003 to 0.0615 mg/kg, and the limit of quantification (LOQ) ranged from 0.010 to 0.2050 mg/kg, with recovery rates of 80.95–110.00%. The analysis for 13 organochlorine pesticide residues, including Aldrin, Cis-Chlordane, Trans-Chlordane, Dieldrin, p,p'-DDD, p,p'-DDE, p,p'-DDT, Endrin, Heptachlor, Heptachlor epoxide, alpha-HCH, beta-HCH, and gamma-HCH using a GC–MS, revealed that no residues were detected above the LOQ (0.01 mg/kg) in any samples, indicating compliance with food safety standards. A scenario-based risk assessment using estimated daily intake (EDI) and hazard quotient (HQ) suggested that, although current exposure is negligible, potential risks may arise under worst-case conditions, particularly for aldrin, dieldrin, and heptachlor in high-consumption groups. Overall, school milk products in Thailand are considered safe; however, continuous monitoring and risk assessment remain essential to ensure long-term food safety. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Comparative physicochemical and rheological properties of tamarind seed xyloglucan from sweet and sour tamarind cultivars for food applications(2026-06-01) ;Julapuk, Punwadee ;Sriprom, Pongsert ;Narkrugsa, Woatthichai ;Phumjan, LamphungAdair, PornpatuThis study comparatively investigated the physicochemical, structural, and rheological properties of xyloglucan extracted from sweet (Sri Chomphu) and sour (Kradan) tamarind kernel (TKP) cultivated in Thailand to provide insights for industrial applications. The extraction yields were 58.35 ± 0.28% and 57.90 ± 0.37% (w/w) for sweet and sour TKP, respectively. Chemical composition analysis revealed comparable macronutrient profiles between the two samples. FTIR spectra confirmed similar functional groups, while SEM analysis showed amorphous and heterogeneous structures with slight differences in porosity. Molecular weight distribution indicated that sour TKP-derived xyloglucan was dominated by intermediate molecular weight fractions (4.03 × 10⁵ Da, 70.46%), whereas sweet TKP-derived xyloglucan exhibited a broader distribution. These structural differences influenced hydration properties, with sweet xyloglucan showing significantly higher water absorption and solubility (%WAI: 475.02 ± 9.91%; %WSI: 5.62 ± 0.62%) compared to sour xyloglucan (%WAI: 398.81 ± 7.01%; %WSI: 4.81 ± 0.57%). Evaluation of gelling properties revealed that both samples exhibited maximum gel strength at 2% concentration and pH 3, with sour xyloglucan forming stronger gels. Rheological analysis demonstrated non-Newtonian pseudoplastic behavior and dominant elastic characteristics (G′ ' G″), with higher viscosity observed in the sour cultivar. Emulsifying activity and stability were high and showed no significant differences (EA: 93.58–94.87%; ES: 97.94–98.71%). Overall, while cultivar origin had minimal impact on structural and emulsifying properties, it significantly influenced hydration and gelling-related characteristics, supporting the potential of tamarind xyloglucan as a versatile hydrocolloid for food and material applications. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Preparation of Vegetable Waste-Derived Paper Incorporated with Activated Carbon for Delay Mango Ripening and its Application(2026-01-01) ;Sriprom, Pongsert ;Thongkham, Phaewa ;Taweesukyingjaroen, Jurairat ;Somphan, ApirukManamoongmongkol, KanjanaIn this study, the vegetable waste-derived paper was developed from vegetable waste-derived fiber and Mahachanok mango seed-derived activated carbon to extend the shelf life of Golden Nam Dok Mai mangoes. Vegetable waste was subjected to alkaline processing using sodium hydroxide to extract plant-based fibers, which were then formed into paper sheets. Activated carbon, derived from Mahachanok mango seeds by carbonization at 450°C and activated by potassium permanganate (KMnO4), was incorporated into the vegetable waste-derived paper to enhance ethylene adsorption efficiency. Three formulations of ripening delay paper were prepared: paper without activated carbon, paper containing 10 g of activated carbon, and paper containing 20 g of activated carbon. The physical properties of the papers were evaluated in terms of tensile strength and water drop absorption. The vegetable waste-derived paper incorporated with 20 g activated carbon showed the highest performance among the developed papers (1.20 ± 0.24 MPa and 0.74 seconds, respectively). Application tests on Golden Nam Dok Mai mangoes showed that the 10 g activated carbon formulation was the most effective in preserving flesh color, maintaining firmness, and balancing total soluble solids (TSS) and titratable acidity (TA), indicating a delayed ripening process. Therefore, ripening delay paper synthesized from vegetable fiber and supplemented with 10 g of activated carbon per 1 kg of fruit was proven to effectively prolong mango shelf life by up to 3 days, demonstrating its potential as a biodegradable solution for postharvest quality preservation. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Development of intelligent packaging from xyloglucan-chitosan modified film with betalains from dragon fruit (Hylocereus undatus) peels(2025-06-01) ;Permana, Lasuardi ;Sriprom, Pongsert ;Narkrugsa, Woatthichai ;Manamoongmongkol, KanjanaAssawasaengrat, PornsawanThis 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. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Optimization of betalain extraction from dragon fruit (Hylocereus undatus) peel and effect of pH on its properties(2025-02-01) ;Permana, Lasuardi ;Sriprom, Pongsert ;Manamoongmongkol, Kanjana ;Phumjan, LamphungAssawasaengrat, PornsawanDragon fruit peels are wastes produced in the food industry and contain abundant phytochemicals. In this study, betalain extraction from dragon fruit peels was optimized using water as a safe and environment-friendly solvent. The Box-Behnken design was used to investigate the effects of different pH (2.0–6.0), temperatures (30–60 °C), times (10–60 min), and solid-to-liquid ratios (1:15–1:40 by weight) on betalain extraction from dragon fruit peels. The betalain extracted under the optimized conditions was then studied for its properties across a wide pH range of 2.0 to 13.0. The results showed that the solid-to-liquid ratio had the most significant effect on betacyanin extraction as the major component of betalain in dragon fruit peels. The optimal extraction conditions were determined to be a pH of 3.6, temperature of 30 °C, extraction time of 10 min, and a solid-to-liquid ratio of 1:15. The expected betacyanin content under these conditions is 72.37 mg/L. A significant change in the CIELAB parameter of the extracted betalain was observed, with marked differences in the L*, a*, and b* values as the pH increased. This color change may be attributed to the degradation of betacyanin into betalamic acid. This study demonstrated the potential of a safe and eco-friendly process for extracting the natural pigment betacyanin from this agricultural waste material and the potential use of betalain in pH-dependent products. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Study on chemical structure stability and properties of chitosan-incorporated tamarind seed kernel xyloglucan hydrogels(2024-12-05) ;Manamoongmongkol, Kanjana ;Sriprom, Pongsert ;Narkrugsa, Woatthichai ;Phumjan, LamphungPermana, LasuardiThis study investigated the stability of chitosan-incorporated tamarind seed kernel xyloglucan hydrogels prepared at different ratios after storage for three years. The physical hydrogel samples were studied using ratios of xyloglucan to chitosan between 1.5:1 and 4:1, comparing fresh hydrogel with hydrogel stored for three years. The hydrogels were analyzed for Fourier transform infrared characteristics, rheological behavior, flow rate, and zeta potential. After three years of storage, a reversible reaction was confirmed by C-H molecular stretching using Fourier transform infrared. All hydrogel samples exhibited pseudoplastic fluid characteristics with liquid-like behavior. The zeta potential of fresh hydrogel at 1.5:1 and 4:1 ratios was 27.700 ± 0.964 mV and 22.633 ± 0.929 mV, respectively, whereas after three years, it became 28.067 ± 1.106 mV and 18.867 ± 0.503 mV, respectively. The amount of xyloglucan significantly affected the zeta potential of the xyloglucan-chitosan hydrogel, leading to a decrease in the stability of the hydrogel at a 4:1 ratio. The stability of the hydrogel at a ratio of 1.5:1 was confirmed by pH and zeta potential measurements. In conclusion, the properties and behavior of the xyloglucan-chitosan hydrogel remained stable after three years of storage at a 1.5:1 ratio. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Activated carbon derived from Mahachanok mango seeds as a potential material to delay the ripening of mangoes(2024-12-01) ;Sriprom, Pongsert ;Assawasaengrat, Pornsawan ;Kraijan, Phornwimon ;Laonork, SiraphobRodmee, ApiwatThe mango processing industry in Thailand generates significant waste, with over 60 % consisting of mango seed. Mahachanok mango seeds, a by-product of mango processing, can be processed into highly porous activated carbon with potential application in agricultural and food preservation. This study investigated the potential of activated carbon derived from Mahachanok mango seeds on delaying the ripening of Nam Dok Mai mangoes. The activated carbon was prepared through a two steps process: biochar preparation followed by activation using KMnO<inf>4</inf>. The morphology of activated carbon was characterized by Fourier transform infrared (FT-IR) spectroscopy, Brunauer-Emmett-Teller (BET) surface area, and Scanning electron microscopy (SEM). The optimal carbonization temperature was determined, and the activated carbon was applied to mango storage. The mango ripening was assessed by measuring weight loss, total color difference (ΔE), firmness, total soluble solids (TSS), titratable acidity (TA), and TSS/TA ratio as a ripening level indicator. The optimal carbonization temperature was found to be 500 °C, yielding 25.47 % activated carbon with iodine number of 361.77 mg I<inf>2</inf>/g AC. The activated surface carbon contained hydroxyl and manganyl groups, with a BET-surface area of 0.649 m<sup>2</sup>/g. Mangoes stored with 10 g of synthesized activated carbon exhibited the best delay in ripening, extending the ripening process by five days compared to the control. On the 8th day of storage, mangoes became early ripe with firmness and TSS/TA values for 10 g of synthesized activated carbon were 0.467 N/mm and 22.35, respectively (p < 0.05). The TSS/TA ratio indicated that this treatment effectively maintained mango quality for up to 14 days of storage. Activated carbon derived from Mahachanok mango seed shows promising results in delaying mango ripening, especially when used at 10 g dosage. This approach utilized food processing waste to create a valuable product for post-harvest handling, potentially improving the freshness of exported fruit. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Organochlorine pesticide residues persist throughout the sugar production process(2024-01-01) ;Janjamroon, Wilailak ;Sriprom, Pongsert ;Kaewlaoyoong, Acharee ;Cheruiyot, Nicholas KiprotichPermana, LasuardiThailand, one of the world's largest sugarcane producers, has historically used organochlorine pesticides (OCPs) extensively in its plantations. Therefore, OCP residues are anticipated in plantation soil. However, the persistence of these compounds during sugar production is ambiguous. Thus, this study investigated the OCP residues in sugarcane at the different processing stages. Five product samples, i.e., sugarcane juice, bagasse, raw sugar, granulated white sugar, and molasses were obtained from different regions in Thailand. High concentrations of p,p′-dichlorodiphenyltrichloroethane (p,p′-DDT), γ-hexachlorocyclohexane (γ-HCH or lindane), and cyclodiene derivatives such as aldrin, dieldrin, heptachlor and its epoxide were found in the samples. This is surprising because the OCP use in sugarcane plantations has been long banned in Thailand. Bagasse and raw sugar had the highest total OCP concentrations of 1.0393 ± 0.7555 mg/kg and 0.9658 ± 0.8209 mg/kg, followed by white sugar (0.1616 ± 0.1311 mg/kg), molasses (0.0813 ± 0.1195 mg/kg), and sugarcane juice (0.0173 ± 0.0112 mg/kg). This study offers comprehensive information on the fate of OCPs during the entire sugarcane processing stage, from the cane to the final granulated sugar. The findings also suggest persistent OCP presence in plantation soil, possibly due to illegal use. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Characterization and Self-Cleaning Properties of Silk Fabric Coated by Chitosan-Xyloglucan/nano-TiO2 Composite Film(2024-01-01) ;Lampang, Chaiyawat Na ;Sriprom, Pongsert ;Manamoongmongkol, Kanjana ;Assawasaengrat, PornsawanNarkrugsa, WoatthichaiIn this study, Chitosan-Xyloglucan encapsulated Titanium dioxide was prepared by in-situ method for coating Silk fabric. FT-IR XRD characterized the functional groups and formation of crystallization of composite film. SEM analysis showed the immobilization of composite film on the surface of silk fabric. The coated silk fabrics were stained with methylene blue, and the stain removal efficiency was evaluated. The results showed that the composite film was deposited onto the silk fabric. The functional groups showed peaks around 1635 to 1636 and 400 to 500 cm-1 that indicate the presence of C=N groups of Chitosan-Xyloglucan and Ti-O groups of TiO<inf>2</inf> on the composite, respectively. The XRD results indicated that the TiO<inf>2</inf> prepared by the sol-gel method was an anatase crystalline structure. The mechanical properties showed the composite film was superior to the Chitosan-Xyloglucan, TiO<inf>2</inf>, and uncoated silk fabric. Finally, the methylene blue degradation capability was investigated. The coated silk fabric has insignificantly removing methylene blue stain than the untreated silk fabric, but it is noticeably repellent to stain. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Preparation, characterization, and antimicrobial activity of xyloglucan-chitosan film from tamarind (tamarind indica L.) seed kernel(2023-06-01) ;Adair, Pornpatu ;Sriprom, Pongsert ;Narkrugsa, Woatthichai ;Phumjan, LamphungManamoongmongkol, KanjanaXyloglucan from tamarind seed kernel powder and chitosan were prepared using acetic acid as an oxidizing agent to form a xyloglucan-chitosan film. This study evaluated the properties of xyloglucan-chitosan films with different loading ratios of xyloglucan using various analytical tools. The covalent bonds formed by the oxidized xyloglucan and chitosan were confirmed by FTIR analysis. Morphological analysis using SEM indicated the formation of a conventional covalent bond in the xyloglucan-chitosan film. The water vapor transmission rate in the xyloglucan-chitosan film was reduced significantly with increasing xyloglucan ratio. Conversely, the increase in the xyloglucan ratio improved the film's mechanical properties (tensile strength = 1.84 ± 0.06<sup>a</sup> MPa, elongation at break = 22.47 ± 0.65<sup>a</sup> %). Furthermore, due to the antimicrobial activity of chitosan, the xyloglucan-chitosan film exhibits intense antimicrobial activity. Therefore, the xyloglucan-chitosan film demonstrated good properties for biodegradable food packaging.
