The Counter Ions of Calcium on The Properties of Thermal Processed Agar Film

Main Article Content

Nurnadia Mohd Johary
Nor Azlina Ismail
Azniwati Abd Aziz
Tay Guan Seng
Nurul Fazita Mohammad Rawi
Nur Izzaati Saharudin
Zuliahani Ahmad

Abstract

This study investigates the fabrication of agar-glycerol films via compression moulding, a scalable thermal processing technique. The objective is to investigate the properties of thermally processed agar films by varying the type of calcium counter ions: adding calcium stearate (CS) to increase hydrophobicity, while calcium chloride (CaCl2) to promote its degradation. The study includes different types of films with varying glycerol amounts, along with different levels of CS and CaCl2 represented by these codes (HGCS25Ca5, HGCa25CS5, LGCS25Ca5 and LGCa25CS5) refer to the specific film samples used in this study. The impact of these compositional variations on thermal behaviour, surface characteristics and degradation profiles is rigorously assessed. The highest melting peak (Tₚₑₐₖ) observed was 140°C, achieved by the formulation containing high CaCl₂ (HGCa25CS5), indicating the crosslinking of CaCl₂ with agar contributes to an increase in the melt transition temperature. The LGCa25CS5 and HGCa25CS5 have higher residual char, approximately 28.42% and 23.37% compared with agar films without CS and CaCl2 (7.49%–8.97%), which implies that the material decomposes less, indicating better thermal stability. The highest contact angle (110.053°) was observed in low glycerol formulations containing high CS, which contributes to enhanced surface hydrophobicity. Conversely, CaCl2, while contributing to the structural integrity of the film, exhibited a less pronounced effect on surface hydrophobicity. High glycerol (HG) sample showed a weight loss of 15.80%, while the thermal compressed agar film incorporating CS and CaCl2 exhibited the highest weight loss of 90%, indicating that CS and CaCl2 promote oxidative degradation of agar chains, enhancing the film’s susceptibility to microbial degradation and resulting in increased weight loss during soil burial tests. The weight loss of all films in the vermicompost condition is more pronounced than in the soil condition. These findings highlight the potential of compression moulding to produce agar-based films with adjustable properties by carefully adding CS and CaCl2. This approach offers a useful understanding of how these additives influence thermal stability, surface hydrophobicity and degradation behaviour in agar-glycerol systems.

Article Details

How to Cite
The Counter Ions of Calcium on The Properties of Thermal Processed Agar Film. (2026). Journal of Physical Science, 37(1), 1–20. https://doi.org/10.21315/jps2026.37.1.1
Section
Articles

References

Nasir, N. N. & Othman, S. A. (2021). The physical and mechanical properties of corn-based bioplastic films with different starch and glycerol content. J. Phys. Sci., 32(3). https://doi.org/10.21315/jps2021.32.3.7

Yeng, C. M., Husseinsyah, S. & Amirudin, M. A. A. A. (2016). Tensile and thermal properties of crosslinked chitosan/empty fruit bunch biofilms by phthalic anhydride. J. Phys. Sci., 27(2). https://doi.org/10.21315/jps2016.27.2.6

Masbah, M. S. et al. (2024). Microwave crosslinked chitosan/green fluorescent carbon nanoparticles film: Comprehensive characterisation and antimicrobial performance. J. Phys. Sci., 35(2). https://doi.org/10.21315/jps2024.35.2.4

Abdul Khalil, H. P. S. et al. (2019). Techno-functional properties of edible packaging films at different polysaccharide blends. J. Phys. Sci., 30, 23–41. https://doi.org/10.21315/jps2019.30.s1.2

Sable, S. et al. (2024). Bioplastic from agar powder: Preparation and its characterization. Sci. Adv. Mater., 16(10), 1040–1046. https://doi.org/10.1166/sam.2024.4713

Raghunathan, R. et al. (2025). Biodegradable products from renewable sources: impact on replacing single-use plastic for protecting the environment. Int. J. Environ. Sci. Technol., 22(7), 6181–6208. https://doi.org/10.1007/s13762-024-06104-7

Samuel, H. S., Ekpan, F. D. M. & Ori, M. O. (2024). Biodegradable, recyclable, and renewable polymers as alternatives to traditional petroleum-based plastics. Asian J. Environ. Res., 1(3), 152–165. https://doi.org/10.69930/ajer.v1i3.86

Favian, E. & Nugraheni, P. S. (2023). Effect of carrageenan addition on the characteristic of chitosan-based bioplastic. IOP Conf. Ser.: Earth Environ. Sci., 1289(1), 012039. https://doi.org/10.1088/1755-1315/1289/1/012039

Wagh, P., Vaidya, V. & Nawani, N. (2024). Physical characterization of agar-based biodegradable films derived from nonhazardous laboratory waste. Energy Environ., 36(5), 2152–2173. https://doi.org/10.1177/0958305X241282606

Patil P.D. (2022). Production of agar-agar and sago based bioplastic: A review. Int. J. Sci. Technol. and Eng., 10(4), 2378–2380. https://doi.org/10.22214/ijraset.2022.41749

Nivetha, A. et al. (2023). Dissolvable and biodegradable packaging with agar agar using design thinking approach. Int. J. Multidiscip. Res., 5(6). https://doi.org/10.36948/ijfmr.2023.v05i06.8786

Osovskaya, I. I. & Baranova, A. E. (2023). Optimization of conditions for the formation of stable gel from agar-agar. Chem. Plant Raw Mater., 2, 71–78. https://doi.org/10.14258/jcprm.20230211723

Dumont, P., Martoïa, F. & Orgéas, L. (2023). Compression moulding. In H. Lee & C. Mike (Eds). Design and manufacture of structural composites. Oxford, United Kingdom: Woodhead Publishing, 273–300.

Viktoriya, S. K. (2023). Investigation of the effect of volumetric hydrophobization on the kinetics of mass transfer processes occurring in cement concretes during corrosion. Materials, 16(10), 3827. https://doi.org/10.3390/ma16103827

Jiwei, L. et al. (2016). A new insight to the effect of calcium concentration on gelation process and physical properties of alginate films. J. Mater. Sci., 51, 5791–5801. https://doi.org/10.1007/s10853-016-9880-0

Hasan, M. et al. (2019). Micro crystalline bamboo cellulose based seaweed biodegradable composite films for sustainable packaging material. J. Environ. Polym. Degrad., 27, 1602–1612. https://doi.org/10.1007/s10924-019-01457-4

Cooke, D., Gidley, M. J. & Hedges, N. D. (1996). Thermal properties of polysaccharides at low moisture: II. Molecular order and control of dissolution temperature in agar. J. Therm. Anal. Calorim., 47(5), 1485–1498. https://doi.org/10.1007/BF01992841

Mohamad Haafiz, M. K. et al. (2016). Exploring the effect of cellulose nanowhiskers isolated from oil palm biomass on polylactic acid properties. Int. J. Biol. Macromol., 85, 370–378. https://doi.org/10.1016/j.ijbiomac.2016.01.004

Weng, L. & Elliott, G. D. (2014). Polymerization effect of electrolytes on hydrogen-bonding cryoprotectants: Ion–dipole interactions between metal ions and glycerol. Phys. Chem. B, 118(49), 14546–14554. https://doi.org/10.1021/jp5105533

Boral, S. & Bohidar, H. B. (2012). Effect of water structure on gelation of agar in glycerol solutions and phase diagram of agar organogels. J. Phys. Chem. B, 116(24), 7113–7121. https://doi.org/10.1021/jp3022024

Shin, M., Kim, T. & Suh, Y. W. (2017). Effect of glycerol on coke characteristics in the aromatization of aqueous glycerol solution. Top. Catal., 60, 658–665. https://doi.org/10.1007/s11244-017-0773-5

Federica, R. et al. (2021). Degradation of film and rigid bioplastics during the thermophilic phase and the maturation phase of simulated composting. J. Environ. Polym. Degrad., 29, 3015–3028. https://doi.org/10.1007/s10924-021-02098-2

Mehrotra, K. N. & Upadhyaya, S. K. (1989). Thermogravimetric, X-Ray and Infrared Studies on Calcium Soaps in Solid State. In Mittal, K. L. (Ed.). Surfactants in Solution. Boston: Springer US, 411–415. https://doi.org/10.1007/978-1-4615-7990-8_30

Ramón, A. et al. (2005). Separation of overlapping processes from TGA data and verification by EGA. J. ASTM Int. Retrieved 9 June 2025 from https://dl.astm.org/stps/book/178/chapter-abstract/59111/Separation-of-Overlapping-Processes-from-TGA-Data

Dina, F. et al. (2024). Impact of agar–glycerol ratios on the physicochemical properties of biodegradable seaweed films: A compositional study. Int. J. Biol. Macromol., 280,135855–135855. https://doi.org/10.1016/j.ijbiomac.2024.135855

Guangbao, W., Shangsuo, Y. & Jijun, X. (2020). Thermal degradation kinetics of calcium stearate/PVC composite. Res. Mater., 8, 100123. https://doi.org/10.1016/j.rinma.2020.100123

Rokhati, N., Hapsari, F. D. & Prasetyaningrum, A. (2023, February). The influence of calcium chloride and potassium chloride cross-linking agent on the physical properties of chitosan-carrageenan composite film. AIP Conf. Proc., 2667(1), 050004. https://doi.org/10.1063/5.0129789

Shahad, K. et al. (2022). A review on the role of earthworms in plastics degradation: Issues and challenges. Polymers, 14(21), 4770. https://doi.org/10.3390/polym14214770

Liu, M., Huang, Z. B. & Yang, Y. J. (2010). Analysis of biodegradability of three biodegradable mulching films J. Environ. Polym. Degrad., 18(2),148–154. https://doi.org/10.1007/S10924-010-0162-7

Letendre, M. et al. (2002). Physicochemical properties and bacterial resistance of biodegradable milk protein films containing agar and pectin. J. Agric. Food Chem., 50(21), 6017–6022. https://doi.org/10.1021/jf011688h