Innovative Synthesis Techniques and Comprehensive Mechanical Characterization of Biopolymer-Based Composites for Advanced Applications in Biochemistry and Materials Sciences

[{“box”:0,”content”:”[if 992 equals=”Open Access”]n

n

n

n

Open Access

nn

n

n[/if 992]n

n

Year : July 19, 2024 at 2:49 pm | [if 1553 equals=””] Volume : [else] Volume :[/if 1553] | [if 424 equals=”Regular Issue”]Issue[/if 424][if 424 equals=”Special Issue”]Special Issue[/if 424] [if 424 equals=”Conference”][/if 424] : | Page : –

n

n

n

n

n

n

By

n

[foreach 286]n

n

n

Pramod Ambadas Karole, Bhushan Garade, Rajesh Kumar,

n

    n t

  • n

n

n[/foreach]

n

n[if 2099 not_equal=”Yes”]n

    [foreach 286] [if 1175 not_equal=””]n t

  1. Assistant Professor, Assistant Professor, Assistant Professor Sandip Institute of Technology & Reserch Centre, Nashik, School of Science, Sandip University, Nashik, Department of Mechanical Engineering, Sandip University Sijoul Maharashtra, Maharashtra, Bihar India, India, India
  2. n[/if 1175][/foreach]

n[/if 2099][if 2099 equals=”Yes”][/if 2099]n

n

Abstract

nBiopolymer-based composites have gotten a lot of attention lately because they could be used in biology and materials science in interesting ways. The main goal of this study is to come up with new ways to make composites and then fully characterize their material properties so that they can be used in more advanced ways. During the production step, a new method is used that combines green chemistry ideas with cutting edge industrial methods. The goal of this method is to make the synthesis process more sustainable and efficient while giving precise control over the shape and composition of the hybrid. Using biopolymers as the base material has natural benefits like being biocompatible, renewable, and biodegradable, which makes them perfect for making hybrid materials that are good for the environment. Advanced testing methods are used to figure out the material properties of these biopolymer-based composites, such as how strong, long-lasting, and structurally sound they are. To test different material qualities under different loads, advanced methods like tensile testing, bending testing, and impact testing are used. Microstructural analysis methods like scanning electron microscopy (SEM) and atomic force microscopy (AFM) are also used to look into how the strengthening agents are distributed and bonded between surfaces in the biopolymer matrix. The findings show that it is possible to make biopolymer-based composites that have the right dynamic qualities for a wide range of uses, from biological devices to building materials. The biopolymer base and strengthening agents work together to make the composites stronger and more stable. Also, biopolymers are good for the earth, which fits with the growing need for long-lasting materials in many fields.

n

n

n

Keywords: Biopolymer-based composites, Synthesis techniques, Mechanical characterization, Advanced applications, Biochemistry and materials sciences

n[if 424 equals=”Regular Issue”][This article belongs to Journal of Polymer and Composites(jopc)]

n

[/if 424][if 424 equals=”Special Issue”][This article belongs to Special Issue under section in Journal of Polymer and Composites(jopc)][/if 424][if 424 equals=”Conference”]This article belongs to Conference [/if 424]

n

n

n

How to cite this article: Pramod Ambadas Karole, Bhushan Garade, Rajesh Kumar. Innovative Synthesis Techniques and Comprehensive Mechanical Characterization of Biopolymer-Based Composites for Advanced Applications in Biochemistry and Materials Sciences. Journal of Polymer and Composites. July 16, 2024; ():-.

n

How to cite this URL: Pramod Ambadas Karole, Bhushan Garade, Rajesh Kumar. Innovative Synthesis Techniques and Comprehensive Mechanical Characterization of Biopolymer-Based Composites for Advanced Applications in Biochemistry and Materials Sciences. Journal of Polymer and Composites. July 16, 2024; ():-. Available from: https://journals.stmjournals.com/jopc/article=July 16, 2024/view=0

nn[if 992 equals=”Open Access”] Full Text PDF Download[/if 992] n

n[if 992 not_equal=’Open Access’] [/if 992]n

n

n

nn[if 379 not_equal=””]n

Browse Figures

n

n

[foreach 379]n

n[/foreach]n

n

n

n[/if 379]n

n

References

n[if 1104 equals=””]n

  1. Richert, A, Olewnik-Kruszkowska, E, Dąbrowska, G.B, Dąbrowski, H.P. The Role of Birch Tar in Changing the Physicochemical and Biocidal Properties of Polylactide-Based Films. Int. J. Mol. Sci. 2022, 23, 268.
  2. Kaczmarek-Szczepańska, B, Wekwejt, M, Mazur, O, Zasada, L, Pałubicka, A, Olewnik-Kruszkowska, E. The Physicochemical and Antibacterial Properties of Chitosan-Based Materials Modified with Phenolic Acids Irradiated by UVC Light. Int. J. Mol. Sci. 2021, 22, 6472.
  3. Czaplicka, N, Mania, S, Konopacka-Łyskawa, D. Influence of Rhamnolipids and Ionic Cross-Linking Conditions on the Mechanical Properties of Alginate Hydrogels as a Model Bacterial Biofilm. Int. J. Mol. Sci. 2021, 22, 6840.
  4. Tarach, I, Olewnik-Kruszkowska, E, Richert, A, Gierszewska, M, Rudawska, A. Influence of Tea Tree Essential Oil and Poly(ethylene glycol) on Antibacterial and Physicochemical Properties of Polylactide-Based Films. Materials 2020, 13, 4953.
  5. Khutsishvili, S.S, Perfileva, A.I, Nozhkina, O.A, Ganenko, T.V, Krutovsky, K.V. Novel Nanobiocomposites Based on Natural Polysaccharides as Universal Trophic Low-Dose Micronutrients. Int. J. Mol. Sci. 2021, 22, 12006.
  6. Diyana, Z, Jumaidin, R, Selamat, M, Ghazali, I, Julmohammad, N, Huda, N, Ilyas, R. Physical Properties of Thermoplastic Starch Derived from Natural Resources and Its Blends: A Review. Polymers 2021, 13, 1396.
  7. Abotbina, W, Sapuan, S.M, Sultan, M.T.H, Alkbir, M.F.M, Ilyas, R.A. Development and Characterization of Cornstarch-Based Bioplastics Packaging Film Using a Combination of Different Plasticizers. Polymers 2021, 13, 3487.
  8. Mohammed, A.A.B.A, Omran, A.A.B, Hasan, Z, Ilyas, R.A, Sapuan, S.M. Wheat Biocomposite Extraction, Structure, Properties and Characterization: A Review. Polymers 2021, 13, 3624.
  9. Nurazzi, N.M, Khalina, A, Chandrasekar, M, Aisyah, H, Rafiqah, S.A, Ilyas, R, Hanafee, Z. Effect of fiber orientation and fiber loading on the mechanical and thermal properties of sugar palm yarn fiber reinforced unsaturated polyester resin composites. Polimery 2020, 65, 115–124.
  10. Ajani, S. N. ., Khobragade, P. ., Dhone, M. ., Ganguly, B. ., Shelke, N. ., & Parati, N. . (2023). Advancements in Computing: Emerging Trends in Computational Science with Next-Generation Computing. International Journal of Intelligent Systems and Applications in Engineering, 12(7s), 546–559
  11. Izwan, S.M, Sapuan, S, Zuhri, M, Mohamed, A. Thermal Stability and Dynamic Mechanical Analysis of Benzoylation Treated Sugar Palm/Kenaf Fiber Reinforced Polypropylene Hybrid Composites. Polymers 2021, 13, 2961.
  12. Suriani, M, Zainudin, H, Ilyas, R, Petrů, M, Sapuan, S, Ruzaidi, C, Mustapha, R. Kenaf Fiber/Pet Yarn Reinforced Epoxy Hybrid Polymer Composites: Morphological, Tensile, and Flammability Properties. Polymers 2021, 13, 1532.
  13. Alias, A.H, Norizan, M.N, Sabaruddin, F.A, Asyraf, M.R.M, Norrrahim, M.N.F, Ilyas, A.R, Kuzmin, A.M, Rayung, M, Shazleen, S.S, Nazrin, A, et al. Hybridization of MMT/Lignocellulosic Fiber Reinforced Polymer Nanocomposites for Structural Applications: A Review. Coatings 2021, 11, 1355.
  14. Azman, M.A, Asyraf, M.R.M, Khalina, A, Petrů, M, Ruzaidi, C.M, Sapuan, S.M, Wan Nik, W.B, Ishak, M.R, Ilyas, R.A, Suriani, M.J. Natural Fiber Reinforced Composite Material for Product Design: A Short Review. Polymers 2021, 13, 1917.
  15. Sharma, S, Sudhakara, P, Omran, A.A.B, Singh, J, Ilyas, R.A. Recent Trends and Developments in Conducting Polymer Nanocomposites for Multifunctional Applications. Polymers 2021, 13, 2898.
  16. Asyraf, M.R.M, Ishak, M.R, Sapuan, S.M, Yidris, N, Ilyas, R.A, Rafidah, M, Razman, M.R. Evaluation of Design and Simulation of Creep Test Rig for Full-Scale Crossarm Structure. Adv. Civ. Eng. 2020, 2020, 6980918.
  17. Ilyas, R.A, Zuhri, M.Y.M, Aisyah, H.A, Asyraf, M.R.M, Hassan, S.A, Zainudin, E.S, Sapuan, S.M, Sharma, S, Bangar, S.P, Jumaidin, R, et al. Natural Fiber-Reinforced Polylactic Acid, Polylactic Acid Blends and Their Composites for Advanced Applications. Polymers 2022, 14, 202.
  18. Norfarhana, A, Ilyas, R, Ngadi, N. A review of nanocellulose adsorptive membrane as multifunctional wastewater treatment. Carbohydr. Polym. 2022, 291, 119563.
  19. Ilyas, R.A, Zuhri, M.Y.M, Norrrahim, M.N.F, Misenan, M.S.M, Jenol, M.A, Samsudin, S.A, Nurazzi, N.M, Asyraf, M.R.M, Supian, A.B.M, Bangar, S.P, et al. Natural Fiber-Reinforced Polycaprolactone Green and Hybrid Biocomposites for Various Advanced Applications. Polymers 2022, 14, 182.
  20. Ilyas, R.A, Aisyah, H.A, Nordin, A.H, Ngadi, N, Zuhri, M.Y.M, Asyraf, M.R.M, Sapuan, S.M, Zainudin, E.S, Sharma, S, Abral, H, et al. Natural-Fiber-Reinforced Chitosan, Chitosan Blends and Their Nanocomposites for Various Advanced Applications. Polymers 2022, 14, 874.
  21. Haris, N.I.N, Hassan, M.Z, Ilyas, R, Suhot, M.A, Sapuan, S, Dolah, R, Mohammad, R, Asyraf, M. Dynamic mechanical properties of natural fiber reinforced hybrid polymer composites: A review. J. Mater. Res. Technol. 2022, 19, 167–182.
  22. Ilyas, R, Sapuan, S, Asyraf, M, Dayana, D, Amelia, J, Rani, M, Norrrahim, M, Nurazzi, N, Aisyah, H, Sharma, S, et al. Polymer Composites Filled with Metal Derivatives: A Review of Flame Retardants. Polymers 2021, 13, 1701.
  23. Suriani, M.J, Ilyas, R.A, Zuhri, M.Y.M, Khalina, A, Sultan, M.T.H, Sapuan, S.M, Ruzaidi, C.M, Wan, F.N, Zulkifli, F, Harussani, M.M, et al. Critical Review of Natural Fiber Reinforced Hybrid Composites: Processing, Properties, Applications and Cost. Polymers 2021, 13, 3514.
  24. Palanisamy, S.; Kalimuthu, M.; Nagarajan, R.; Fernandes Marlet, J.M.; Santulli, C. Physical, Chemical, and Mechanical Characterization of Natural Bark Fibers (NBFs) Reinforced Polymer Composites: A Bibliographic Review. Fibers 2023, 11, 13. https://doi.org/10.3390/fib11020013
  25. Mylsamy B, Shanmugam SKM, Aruchamy K, Palanisamy S, Nagarajan R, Ayrilmis N. A review on natural fiber composites: Polymer matrices, fiber surface treatments, fabrication methods, properties, and applications. Polym Eng Sci. 2024; 64(6): 2345-2373. doi:10.1002/pen.26713
  26. Karthik, M. Bhuvaneshwaran, M. S. Senthil Kumar, S. Palanisamy, M. Palaniappan, N. Ayrilmis, ChemistrySelect 2024, 9, e202400650. https://doi.org/10.1002/slct.202400650
  27. Kurien, R.A., Selvaraj, D.P., Sekar, M. et al. A comprehensive review on the mechanical, physical, and thermal properties of abaca fibre for their introduction into structural polymer composites. Cellulose 30, 8643–8664 (2023). https://doi.org/10.1007/s10570-023-05441-z
  28. Goutham, E.R.S.; Hussain, S.S.; Muthukumar, C.; Krishnasamy, S.; Kumar, T.S.M.; Santulli, C.; Palanisamy, S.; Parameswaranpillai, J.; Jesuarockiam, N. Drilling Parameters and Post-Drilling Residual Tensile Properties of Natural-Fiber-Reinforced Composites: A Review. J. Compos. Sci. 2023, 7, 136. https://doi.org/10.3390/jcs7040136
  29. Palanisamy, S., Murugesan, T. M., Palaniappan, M., Santulli, C., Ayrilmis, N., and Alavudeen, A. (2024). “Selection and processing of natural fibers and nanocellulose for biocomposite applications: A brief review,” BioResources 19(1), 1789-1813.

nn[/if 1104][if 1104 not_equal=””]n

    [foreach 1102]n t

  1. [if 1106 equals=””], [/if 1106][if 1106 not_equal=””],[/if 1106]
  2. n[/foreach]

n[/if 1104]

nn


nn[if 1114 equals=”Yes”]n

n[/if 1114]

n

n

[if 424 not_equal=””][else]Ahead of Print[/if 424] Open Access Review Article

n

n

n

n

n

Journal of Polymer and Composites

n

[if 344 not_equal=””]ISSN: 2321–2810[/if 344]

n

n

n

n

n

[if 2146 equals=”Yes”][/if 2146][if 2146 not_equal=”Yes”][/if 2146]n

n

n

n

n

n

n

n

n

n

n

n

n

n

n

n

n

n

n

n

n[if 1748 not_equal=””]

[else]

[/if 1748]n

n

n

Volume
[if 424 equals=”Regular Issue”]Issue[/if 424][if 424 equals=”Special Issue”]Special Issue[/if 424] [if 424 equals=”Conference”][/if 424]
Received May 16, 2024
Accepted June 26, 2024
Published July 16, 2024

n

n

n

n

n

n nfunction myFunction2() {nvar x = document.getElementById(“browsefigure”);nif (x.style.display === “block”) {nx.style.display = “none”;n}nelse { x.style.display = “Block”; }n}ndocument.querySelector(“.prevBtn”).addEventListener(“click”, () => {nchangeSlides(-1);n});ndocument.querySelector(“.nextBtn”).addEventListener(“click”, () => {nchangeSlides(1);n});nvar slideIndex = 1;nshowSlides(slideIndex);nfunction changeSlides(n) {nshowSlides((slideIndex += n));n}nfunction currentSlide(n) {nshowSlides((slideIndex = n));n}nfunction showSlides(n) {nvar i;nvar slides = document.getElementsByClassName(“Slide”);nvar dots = document.getElementsByClassName(“Navdot”);nif (n > slides.length) { slideIndex = 1; }nif (n (item.style.display = “none”));nArray.from(dots).forEach(nitem => (item.className = item.className.replace(” selected”, “”))n);nslides[slideIndex – 1].style.display = “block”;ndots[slideIndex – 1].className += ” selected”;n}n”}]