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Alginate/ZnO Composition for Paper Coating: Evaluation of Paper Properties

Yıl 2026, Cilt: 19 Sayı: 1 , 295 - 314 , 30.03.2026
https://izlik.org/JA36WH47FK

Öz

Paper and paper-based compounds are frequently coated with various polymeric chemicals to improve their qualities, ranging from surface roughness to printability. Different biological derivatives of polymers, including as starch, chitosan, and cellulose precursors, are routinely utilized to improve paper qualities via various coating approaches. In this investigation, alginates (Als) of varying molecular weights were combined with zinc oxide (ZnO), and the produced compositions (1/1, 1/0.5, 1/0.25) were applied to the filter paper surface using a simple bar coating process. Control and Al/ZnO-coated papers’ density, degradation versus time, oil absorption performances, FTIR spectrum, dry-wet strength, COBB values, air permeabilities, antibacterial activities and SEM images were evaluated for determining Al and Al/ZnO-based coating solutions’ efficiencies. The density values of the papers were found to range from 42.10 g/cm³ to 46.75 g/cm³. The inclusion of ZnO reduces liquid absorption efficiency, which is consistent with the degradation results. The use of ZnO in the coating solution enhanced both the dry strength and water absorption capabilities, leading to strength performance improvements from 0.2134 kN m/g to a range of 0.3220 kN m/g to 0.3652 kN m/g. Contrastly, wet strength performances decreased to 0.0205 kN m/g-0.0262 kN m/g from 0.45 kN m/g. In general, both strength and antibacterial performances show that these papers can be candidates for food packaging material for low-weighted dry substances.

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Kağıt Yüzey Kaplama için Aljinat/ZnO Kompozisyonu: Kağıt Özelliklerinin Değerlendirilmesi

Yıl 2026, Cilt: 19 Sayı: 1 , 295 - 314 , 30.03.2026
https://izlik.org/JA36WH47FK

Öz

Kağıt ve kağıt esaslı ürünler, kağıdın yüzey pürüzlülüğünden baskı aşamalarına kadar farklı özelliklerin iyileştirilmesi amacıyla farklı polimerik kimyasallarla kaplanmaktadır. Nişasta, kitosan ve selüloz türevleri gibi farklı biyolojik prekursorlar, farklı kaplama işlemleriyle kağıt özelliklerini iyileştirmek amacıyla yaygın olarak kullanılmaktadır. Bu çalışmada, farklı molekül ağırlıklarına sahip aljinatlar (Als), çinko oksit (ZnO) ile karıştırılmış ve hazırlanan bu bileşimler (1/1, 1/0,5, 1/0,25), basit silindirik kaplama yöntemiyle standart filtre kağıdı yüzeyine uygulanmıştır. Kontrol kağıdı ve Al/ZnO solüsyonların kağlama etkinliğinin belirlenmesi amacıyla kağıtların yoğunluk, süreye bağlı bozunma oranı, yağ absorpsiyon performansı, FTIR spektrumu, kuru-ıslak sağlamlık özellikleri, COBB değerleri, hava geçirgenliği, antibakteriyel aktiviteleri ve SEM görüntüleri incelenmiştir. Kağıtların yoğunluk değerleri 42.10 gr/cm3 ile 46.75 gr/cm3 değerleri arasında tespit edilmiştir. ZnO ilavesi bozunma testleri ile benzer şekilde sıvı absorpsiyon performanlarını olumsuz etkilemiştir. Kaplama çözeltisinde ZnO'nun varlığı hem kuru sağlamlık hem de sıvı absorpsiyon performansını olumlu yönde etkileyerek, sağlamlık değerlerinin 0.2134 kN m/g'dan 0.3220 kN m/g ile 0.3652 kN m/g aralığına çıkmasını sağlamıştır. Buna karşılık, ıslak sağlamlık performansları 0.45 kN m/g'dan 0.0205 kN m/g-0.0262 kN m/g'a aralığına düşmüştür. Genel olarak, hem sağlamlık hem de antibakteriyel performanslar, bu kağıtların düşük ağırlıklı kuru özellikli gıda maddeler için bir ambalaj malzemesi adayı olabileceğini göstermektedir.

Etik Beyan

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Destekleyen Kurum

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Proje Numarası

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Teşekkür

-

Kaynakça

  • [1] Xia, Y., Wang, S., Meng, F., Xu, Z., Fang, Q., Gu, Z., Zhang, C., Li, P. & Kong, F. (2024). Eco-friendly food packaging based on paper coated with a bio-based antibacterial coating composed of carbamate starch, calcium lignosulfonate, cellulose nanofibrils, and silver nanoparticles. International Journal of Biological Macromolecules, 254, 127659.
  • [2] Cao, M. & Gao, Q. (2020). Effect of dual modification with ultrasonic and electric field on potato starch. International Journal of Biological Macromolecules, 150, 637–643.
  • [3] He, Y., Li, H., Fei, X. & Peng, L. (2021). Carboxymethyl cellulose/cellulose nanocrystals immobilized silver nanoparticles as an effective coating to improve barrier and antibacterial properties of paper for food packaging applications. Carbohydrate Polymers, 252, 117156.
  • [4] Basta, A. H., Khwaldia, K., Aloui, H. & El-Saied, H. (2015). Enhancing the performance of carboxymethyl cellulose by chitosan in producing barrier coated paper sheets. Nordic Pulp & Paper Research Journal, 30(4), 617–625.
  • [5] Arantes, L. D. S., Mascarenhas, A. R. P., Borges, I. O., Lago, R. C. D., Silva, C. H. D., Innocentini, M. D. M., Mendes, L. M. & Tonoli, G. H. D. (2024). Use of carbonated cellulose micro/nanofibrils in the coating of sack kraft paper. European Journal of Wood and Wood Products, 82(4), 1049–1059.
  • [6] Wang, S., Pei, L., Wei, J., Xie, J., Ji, X., Wang, Y., Jia, P. & Jiao, Y. (2024). Preparation of environmentally friendly oil- and water-resistant paper using holo-lignocellulosic nanofibril (LCNF)-based composite coating. Polymers, 16(8), 1078.
  • [7] Lengowski, E. C., Júnior, E. A. B., Simon, L. C., Izidio, V. M. C., Andrade, A. S. D., Nisgoski, S. & Muniz, G. I. B. D. (2024). Unbleached nanofibrillated cellulose as additive and coating for kraft paper. Coatings, 14(8), 962.
  • [8] Liu, B., Sun, F., Zhu, P., Wang, K., Peng, L., Zhuang, Y. & Li, H. (2024). Preparation of multi-barrier and multi-functional paper-based materials by chitosan, ethyl cellulose and green walnut husk biorefinery products for sustainable food packaging. International Journal of Biological Macromolecules, 278, 134557.
  • [9] Korumilli, T., Teotia, A., Abdullahi, A. & Korukonda, J. R. (2024). Hydrophobic, oil-repellent, and antimicrobial guar gum–chitosan composite paper coating for sustainable food packaging. Journal of Applied Polymer Science, 141(40), e56020.
  • [10] Priyadarshi, R., Riahi, Z. & Rhim, J. W. (2024). Alginate-coated functional wrapping paper incorporated with sulfur quantum dots and grapefruit seed extract for preservation of potato hash browns. Sustainable Materials and Technologies, 40, e00942.
  • [11] Ureña, M., Carullo, D., Phùng, T. T. T., Fournier, P., Farris, S., Lagorce, A. & Karbowiak, T. (2024). Effect of polymer structure on the functional properties of alginate for film or coating applications. Food Hydrocolloids, 149, 109557.
  • [12] Kopacic, S., Walzl, A., Zankel, A., Leitner, E. & Bauer, W. (2018). Alginate and chitosan as a functional barrier for paper-based packaging materials. Coatings, 8(7), 235.
  • [13] Li, Q., Wang, S., Jin, X., Huang, C. & Xiang, Z. (2020). The application of polysaccharides and their derivatives in pigment, barrier, and functional paper coatings. Polymers, 12(8), 1837.
  • [14] He, S. M., Wang, F., Zhang, L., Zhang, J. Y., Zeng, F. R., Liu, B. W., Luo, Y., Wang, Y. & Zhao, H. B. (2023). Quick and efficient flame-retardant, antibacterial and antifungal treatment for high-performance cellulose paper. Progress in Organic Coatings, 185, 107947.
  • [15] Fata Moradali, M., Ghods, S., & Bernd H.A. (2018). Alginate Biosynthesis and Biotechnological Production. Rehm Rehm, B. H. A. & Moradali, M. F. (Ed.), Alginates and Their Biomedical Applications. (4). Springer Nature Singapore Pte Ltd.: Singapore
  • [16] Dey, P., Ramanujam, R., Venkatesan, G. & Nagarathnam, R. (2019). Sodium alginate potentiates antioxidant defense and PR proteins against early blight disease caused by Alternaria solani in Solanum lycopersicum Linn. PLoS One, 14(9), e0223216.
  • [17] Riseh, R. S., Vazvani, M. G., Ebrahimi-Zarandi, M. & Skorik, Y. A. (2022). Alginate-induced disease resistance in plants. Polymers, 14(4), 661.
  • [18] Rahman, M. M., Shahid, M. A., Hossain, M. T., Sheikh, M. S., Rahman, M. S., Uddin, N., Rahim, A., Khan, R. A. & Hossain, I. (2024). Sources, extractions, and applications of alginate: A review. Discover Applied Sciences, 6(8), 443.
  • [19] Miraftab, M., Iwu, C., Okoro, C. & Smart, G. (2010). Inherently antimicrobial alchite fibres developed for wound care applications. In Medical and Healthcare Textiles (pp. 76–83). Woodhead Publishing.
  • [20] Agarwal, A., McAnulty, J. F., Schurr, M. J., Murphy, C. J. & Abbott, N. L. (2011). Polymeric materials for chronic wound and burn dressings. In Advanced Wound Repair Therapies (pp. 186–208).
  • [21] Zhang, Z., Liu, H., Yu, D. G. & Bligh, S. W. A. (2024). Alginate-based electrospun nanofibers and the enabled drug controlled release profiles: A review. Biomolecules, 14(7), 789.
  • [22] Lou, X., Shen, H. S. & Shen, Y. S. (1991). Development of ZnO series ceramic semiconductor gas sensors. Journal of Sensor and Transducer Technology, 3(1), 1–5.
  • [23] Segets, D., Gradl, J., Taylor, R. K., Vassilev, V. & Peukert, W. (2009). Analysis of optical absorbance spectra for the determination of ZnO nanoparticle size distribution, solubility, and surface energy. ACS Nano, 3(7), 1703–1710.
  • [24] Kołodziejczak-Radzimska, A. & Jesionowski, T. (2014). Zinc oxide—from synthesis to application: A review. Materials, 7(4), 2833–2881.
  • [25] Sirelkhatim, A., Mahmud, S., Seeni, A., Kaus, N. H. M., Ann, L. C., Bakhori, S. K. M., Hasan, H. & Mohamad, D. (2015). Review on zinc oxide nanoparticles: Antibacterial activity and toxicity mechanism. Nano-Micro Letters, 7(3), 219–242.
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Toplam 63 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Malzeme Karekterizasyonu
Bölüm Araştırma Makalesi
Yazarlar

Orçun Çağlar Kurtuluş 0000-0002-3233-7279

Proje Numarası -
Gönderilme Tarihi 17 Kasım 2025
Kabul Tarihi 11 Şubat 2026
Yayımlanma Tarihi 30 Mart 2026
IZ https://izlik.org/JA36WH47FK
Yayımlandığı Sayı Yıl 2026 Cilt: 19 Sayı: 1

Kaynak Göster

APA Kurtuluş, O. Ç. (2026). Alginate/ZnO Composition for Paper Coating: Evaluation of Paper Properties. Erzincan University Journal of Science and Technology, 19(1), 295-314. https://izlik.org/JA36WH47FK