A Brief Review on Circular Economy Pathways in Plastic Recycling
Authors
Fakulti Teknologi dan Kejuruteraan Industri dan Pembuatan, Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, 76100, Durian Tunggal, Melaka (Malaysia)
Fakulti Teknologi dan Kejuruteraan Mekanikal, Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, 76100, Durian Tunggal, Melaka (Malaysia)
Fakulti Teknologi dan Kejuruteraan Industri dan Pembuatan, Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, 76100, Durian Tunggal, Melaka (Malaysia)
Jabatan Teknologi Mekanikal Polimer, Institut Kemahiran Tinggi Belia Negara (IKTBN) Sepang, Bandar Baru Salak Tinggi, 43900, Sepang, Selangor (Malaysia)
Article Information
DOI: 10.47772/IJRISS.2025.91200231
Subject Category: Economics
Volume/Issue: 9/12 | Page No: 3032-3043
Publication Timeline
Submitted: 2025-12-27
Accepted: 2026-01-02
Published: 2026-01-12
Abstract
Plastic waste has become one of the defining sustainability challenges of our time, demanding a decisive shift from the linear “take–make–dispose” model toward a circular plastic economy. This brief review paper examines how circularity in plastics is being advanced through innovative approaches such as product redesign, advanced recycling technologies, and policy instruments, including Circular Economy Blueprints and Extended Producer Responsibility (EPR). Yet, the transition is constrained by systemic barriers: deficits in infrastructure, uneven public awareness, weak enforcement, and fragmented regional strategies. Beyond technical interventions, the circular economy of plastics requires a social perspective that acknowledges the environmental, economic, and societal costs of mismanaged waste. Failures in recycling systems intensify hidden risks, notably microplastic pollution and human health impacts, underscoring the urgency of comprehensive reform. Pathways to overcoming these barriers include strategic regional collaboration, scientific innovation, and inclusive governance frameworks that integrate social responsibility with technological progress. By situating these dynamics within broader debates on sustainable development, this paper offers insights into practical strategies for embedding circularity in plastic recycling and advancing resilience across diverse contexts.
Keywords
Circular Economy; Plastic Recycling
Downloads
References
1. Zainal, M.S.A. & Abas, Z. (2018). Adoption of circular economy for a sustainable solid waste management system in Malaysia. Malaysian Management Journal. 22, 35-51. [Google Scholar] [Crossref]
2. Agamuthu, P. & Fauziah, S.H. (2011). Challenges and issues in moving towards sustainable landfilling in a transitory country – Malaysia. Waste Management & Research: The Journal for a Sustainable Circular Economy. 29(1), 13-19. [Google Scholar] [Crossref]
3. Khaw-ngern, K., Peuchthonglang, P., Klomkul, L. & Khaw-ngern, C. (2021). The 9Rs strategies for the circular economy 3.0. Psychology and Education Journal. 58(1). 1440–1446. [Google Scholar] [Crossref]
4. Noor Al.Huda, K.H., Huang, X., Li, X. & Yao, J. (2024). Assessing the impact of circular economy practices on global waste management systems. Estidamaa. 2024. 22-29. [Google Scholar] [Crossref]
5. Isa, N.M., Sivapathy, A. & Adjrina Kamarruddin, N.N. (2021). Malaysia on the way to sustainable development: Circular economy and green technologies. In Modeling Economic Growth in Contemporary Malaysia. 2021. 91–115. [Google Scholar] [Crossref]
6. Heshmati, A. (2017). A review of the circular economy and its implementation. International Journal of Green Economics. 11(3-4). 251-288. [Google Scholar] [Crossref]
7. Sarpong, S. & Alarussi, A.S. (2022). Waste to wealth: enhancing circularities in the Malaysian economy. Technological Sustainability. 1(2). 145–159. [Google Scholar] [Crossref]
8. Ciloci, R. & Turcan, I. (2024). The innovation the driver for circular economy,” in Competitiveness and Sustainable Development, Conference Proceedings, The 6th Economic International Conference organized by Technical University of Moldova. 2024. 223–228. [Google Scholar] [Crossref]
9. Tan, M.H., Chiong, M.S., Chun, Y.-Y., Tsukahara, K. & Tahara, K. (2022). An analysis of practices and challenges for plastic recycling industry in Malaysia. International Journal of Automation Technology. 16(6). 831–837. [Google Scholar] [Crossref]
10. Chen, H.L., Nath, T.K., Chong, S., Foo, V., Gibbins, C. & Lechner, A.M. (2021). The plastic waste problem in Malaysia: management, recycling and disposal of local and global plastic waste. SN Applied Sciences. 3(437). 1-15. [Google Scholar] [Crossref]
11. Vertakova, Y.V. & Plotnikov, V.A. (2019). The integrated approach to sustainable development: The case of energy efficiency and solid waste management. International Journal of Energy Economics and Policy. 9(4). 194–201. [Google Scholar] [Crossref]
12. Knickmeyer, D. (2020). Social factors influencing household waste separation: A literature review on good practices to improve the recycling performance of urban areas. Journal of Cleaner Production. 245. 118605. [Google Scholar] [Crossref]
13. Lima, A.P., Fialho, R.L.L & Gomes, P.A.P. (2023). Social technology for local recycling of plastic: An example of circular economy. Journal of Bioengineering, Technologies and Health. 6(1). 28–33. [Google Scholar] [Crossref]
14. Barford, A. & Ahmad, S.R. (2021). A call for a socially restorative circular economy: Waste pickers in the recycled plastics supply chain. Circular Economy and Sustainability. 1(2). 761–782. [Google Scholar] [Crossref]
15. Tang, K.H.D. (2025). An overview of circular economy approaches for plastics. Recent Progress in Materials. 7(3). 1–22. [Google Scholar] [Crossref]
16. Roy, D., Berry, E., Orr, K. & Dempster, M. (2023). Barriers to recycling plastics from the perspectives of industry stakeholders: a qualitative study. Journal of Integrative Environmental Sciences. 20(1). 2190379. [Google Scholar] [Crossref]
17. Paletta, A., Leal Filho, W., Balogun, A.-L., Foschi, E. & Bonoli, A. (2019). Barriers and challenges to plastics valorisation in the context of a circular economy: Case studies from Italy. Journal of Cleaner Production. 241(118149). 1-14. [Google Scholar] [Crossref]
18. Brown, E., MacDonald, A., Allen, S. & Allen, D. (2023). The potential for a plastic recycling facility to release microplastic pollution and possible filtration remediation effectiveness. Journal of Hazardous Materials Advances. 10. 100309. [Google Scholar] [Crossref]
19. Kumar, R., Manna, C., Padha, S., Verma, A., Sharma, P., Dhar, A., Ghosh, A. & Bhattacharya. (2022). Micro(nano)plastics pollution and human health: How plastics can induce carcinogenesis to humans?. Chemosphere. 298. 134267. [Google Scholar] [Crossref]
20. Shukla, S., Khanna, S. & Khanna, K. (2025). Unveiling the toxicity of micro-nanoplastics: A systematic exploration of understanding environmental and health implications. Toxicology Reports. 14. 101844. [Google Scholar] [Crossref]
21. Khan, A.A. & Bose, K. (2024). Microplastics: An overview on ecosystem and human health. International Journal of Research Publication and Reviews. 5(6). 3691–3702. [Google Scholar] [Crossref]
22. Jaeger, B. & Upadhyay, A. (2020). Understanding barriers to circular economy: cases from the manufacturing industry. Journal of Enterprise Information Management. 33(4). 729–745. [Google Scholar] [Crossref]
23. Baldassarre, B., Maury, T., Mathieux, F., Garbarino, E., Antonopoulos, I., Sala, A. (2022). Drivers and barriers to the circular economy transition: The case of recycled plastics in the automotive sector in the European Union. Procedia CIRP. 105. 37–42. [Google Scholar] [Crossref]
24. McKinnon, D. & Christensen, L.H. (2018). Policy Brief – Plastic Waste Markets. Overcoming barriers to better resource utilisation. Nordic Council of Ministers. [Google Scholar] [Crossref]
25. Jacobsen, L.F., Pedersen, S. & Thøgersen, J. (2022). Drivers of and barriers to consumers’ plastic packaging waste avoidance and recycling – A systematic literature review. Waste Management. 141. 63–78. [Google Scholar] [Crossref]
26. Ames CBR. (2025). Indonesia’s circular economy challenge: Addressing the 7.8% recycling gap. Circular Business Review. Retrieved from: https://www.circularbusinessreview.com/indonesias-circular-economy-challenge-addressing-the-7-8-recycling-gap/ [Google Scholar] [Crossref]
27. Pollution Control Department (PCD). Thailand roadmap on plastic waste management 2018-2030. Bangkok: Ministry of Natural Resources and Environment. Retrieved from: https://www.pcd.go.th/wp-content/uploads/2021/10/pcdnew-2021-10-19_08-59-54_995414.pdf [Google Scholar] [Crossref]
28. Yu, Z., Liu, X., Yu, J., Sujauddin, M. and Manago, G. (2025). A cluster analysis of cooperative recycling behaviors for post-consumer plastic waste in urban areas: A case study on Sendai, Kawasaki, and Kyoto city in Japan. Sustainability. 17(17). 7939. [Google Scholar] [Crossref]
29. Xem, b.T.V. (2025). KPMG Vietnam. Key amendments to Vietnam’s environment protection regulations on EPR. Retrieved from: https://kpmg.com/vn/en/home/insights/2025/02/key-amendments-to-vietnam-environment-protection-regulations.html [Google Scholar] [Crossref]
30. Energy Central PH. (2025). Communities transform plastic waste into eco-bricks for a more sustainable future. Retrieved from: https://energycentralph.info/communities-transform-plastic-waste-into-eco-bricks-for-a-more-sustainable-future/ [Google Scholar] [Crossref]
31. Al-Salem, S.M., Lettieri, P. & Baeyens, J. (2009). Recycling and recovery routes of plastic solid waste (PSW): A review. Waste Management. 29(10). 2625–2643. [Google Scholar] [Crossref]
32. Lopez, G., Artetxe, M., Amutio, M., Bilbao, J. & Olazar, M. (2017). Thermochemical routes for the valorization of waste polyolefinic plastics to produce fuels and chemicals. A review. Renewable and Sustainable Energy Reviews. 73(C). 346–368. [Google Scholar] [Crossref]
33. Umberto, A. (2012). Process and technological aspects of municipal solid waste gasification. A review. Waste Management. 32(4). 625–639. [Google Scholar] [Crossref]
34. Basu, P. (2018). Biomass gasification, pyrolysis and torrefaction – Practical design and theory. 3rd Edition. Academic Press. [Google Scholar] [Crossref]
35. Jehanno, C., Pérez-Madrigal, M.M., Demarteau, J., Sardon, H. & Dove, A.P. (2019). Organocatalysis for depolymerisation. Polymer Chemistry. 10. 172–186. [Google Scholar] [Crossref]
36. Vollmer, I., Jenks, M.J.F., Roelands, M.C.P., White, R.J., Harmelen, T., de Wild, P., van der Laan, G.P., Meirer, F., Keurentjes, J.T.F. & Weckhuysen, B.M. (2020). Beyond mechanical recycling: Giving new life to plastic waste. Angewandte Chemie International Edition. 59(36). 15402–15423. [Google Scholar] [Crossref]
37. Yoshida, S., Hiraga, K., Takehana, T., Taniguchi, I., Yamaji, H., Maeda, Y., Toyohara, K., Miyamoto, K., Kimura, Y. & Oda, K. (2016). A bacterium that degrades and assimilates polyethylene terephthalate. Science. 351(6278). 1196–1199. [Google Scholar] [Crossref]
38. Johansen, C. (2025). Engineered microbes for the biotransformation of plastic waste into value-added chemicals. Journal of Industrial and Environmental Chemistry. 9(1). 175. [Google Scholar] [Crossref]
39. Julianne, J. (2025) How microbes could help solve he world’s plastic pollution crisis. The Conversation Newsletter. Retrieved from: https://theconversation.com/how-microbes-could-help-solve-the-worlds-plastic-pollution-crisis-262583 [Google Scholar] [Crossref]
40. Chong-qing, W., Wang, H., Fu, J.-g. & Liu, Y.-n. (2015). Flotation separation of waste plastics for recycling – A review. Waste Management. 41. 28-38. [Google Scholar] [Crossref]
41. Association of Plastic Recyclers. (2024). Near infrared (NIR) sorting of whole rigid packages in the plastics recycling process. Document Number: RES-SORT-01. Retrieved from: https://plasticsrecycling.org/wp-content/uploads/2024/07/RES-SORT-01-NIR-Sortation_Resource.pdf [Google Scholar] [Crossref]
42. Lubongo, C., Bin Daej, M.A.A., & Alexandridis, P. (2024). Recent developments in technology for sorting plastic for recycling: The emergence of artificial intelligence and the rise of the robots. Recycling. 9(4). 59. [Google Scholar] [Crossref]
43. AMP Robotics. (2025). Automated sorting system for plastic. AMP Delta System Overview. Retrieved from: https://ampsortation.com/applications/plastic [Google Scholar] [Crossref]
44. Madhumitha, K., Tripathi, T. & Rathore, A. (2025). Ecocycle: A deep learning-based waste categorization and management system for sustainable smart cities. International Journal of Current Science Research and Review. 8(3). 1275-1280. [Google Scholar] [Crossref]
45. Mahes Kumar, V., Vishnu Selvan, D., Stalin, K. & Manoj Kumar, T. (2024). Smart waste classification system using deep learning. International Journal of Research Publication and Reviews. 5(12). 2872-2876. [Google Scholar] [Crossref]
46. Walker, T.W., Frelka, N., Shen, Z., Chew, A.K., Banick, J., Grey, S., Kim, M.S., Dumesic, J.A., Van Lehn, R.C. & Huber, G.W. (2020). Recycling of multilayer plastic packaging materials by solvent-targeted recovery and precipitation. Science Advances. 6(47). [Google Scholar] [Crossref]
47. Bocken, N.M.P., de Pauw, I., Bakker, C. & van der Grinten, B. (2016). Product design and business model strategies for a circular economy. Journal of Industrial and Production Engineering. 33(5). 308-320. [Google Scholar] [Crossref]
48. Shen, Li., Worrell, E. & Patel, M. (2009). Present and future development in plastics from biomass. Biofuels, Bioproducts and Biorefining. 4(1). 25-40. [Google Scholar] [Crossref]
49. Nizamudin, S., Baloch, A.J., Chen, C., Arif, M. & Mubarak, N.M. (2024). Bio-based plastics, biodegradable plastics, and compostable plastics: biodegradation mechanism, biodegradability standards and environmental stratagem. International Biodeterioration & Biodegradation. 195. 105887. [Google Scholar] [Crossref]
50. Anish Kumar, J. & Kewate, S.P. (2024). Manufacturing of eco bricks: A sustainable solution for construction. Engineering Proceesings. 86(1). 28. [Google Scholar] [Crossref]
51. Singh, N., Hui, D., Singh, R., Ahuja, I.P.S., Feo, L. & Fraternali, F. (2017). Recycling of plastic solid waste: A state of art review and future applications. Coposites Part B: Engineering. 115. 409-422. [Google Scholar] [Crossref]
52. Zander, N.E., Gillan, M. & Lambeth, R.H. (2018). Recycled polyethylene terephthalate as a new FFF feedstock material. Additive Manufacturing. 21. 174-182. [Google Scholar] [Crossref]
53. Francisco, K. & Swanson, D. (2018). The supply chain has no clothes: Technology analogy of blockchain for supply chain transparency. Logistics. 2(1). 1-13. [Google Scholar] [Crossref]
54. Kouhizadeh, M., Saberi, S. & Sarkis, J. (2021). Blockchain technology and the sustainable supply chain: Theoretically exploring adoption barriers. International Journal of Production Economics. 231. 107831. [Google Scholar] [Crossref]
55. Caterina, P. Spyridoula, G., Weimu, Y., Olwenn, M. & Eleni, I. (2025). The potential of deposit refund systems in closing the plastics beverage bottle loop: A review. Resources, Conservation and Recycling. 212. 107962. [Google Scholar] [Crossref]
56. Ragaert, K., Laurens, D. & Geem, K.V. (2017). Mechanical and chemical recycling of solid plastic waste. Waste Management. 69. 24-58. [Google Scholar] [Crossref]
57. Tiso, T., Narancic, T., Wei, R., Pollet, E., Beagan, N., Schroder, K., Honak, A., Jiang, M., Kenny, S.T., Wierckx, N., Perrin, R., Averous, L., Zimmermann, W., O’Connor, K. and Blank, L.M. (2021). Towards bio-upcycling of polyethylene terephthalate. Metabolic Engineering. 66. 167-178. [Google Scholar] [Crossref]
58. Uekert, T. (2024). Mapping the end-of-life of chemicals for circular economy opportunities. RSC Sustainability. 2. 3353-3361. [Google Scholar] [Crossref]
Metrics
Views & Downloads
Similar Articles
- Impact of Foreign Direct Investment in India
- Issues Involved in Digitalisation Special Reference to Indian Tourism Growth
- Relationship Marketing and Customer Loyalty in the Fast-Moving Consumer Goods (FMCG) Industry in Nairobi County
- Financial Literacy or Financial Inclusion? Which is Which, What is What—To Achieve Uganda’s 10-Fold Economic Growth By 2040
- Harnessing Natural Gas for Economic Transformation: Overcoming the Regulatory and Infrastructural Bottlenecks in Nigeria