Aug 2026· Sustainable Chemistry· 0 citations· 83 references
Abstract
Plastic waste presents a persistent environmental burden, yet its constituent polymers represent structurally valuable chemical feedstocks. Mechanical recycling remains limited due to polymer degradation, additive contamination, and material downcycling, underscoring the need for alternative strategies. Chemical upcycling offers pathways to convert post-consumer plastics into higher-value monomers, functional chemicals, and bioactive or pharmaceutical precursors by exploiting inherent structural motifs such as aromatic rings, ester linkages, and heteroatom-containing backbones. Approaches such as catalytic depolymerization, molecular functionalization, microbial and enzymatic transformation, and scaffold repurposing enable the recovery of polymer-derived building blocks with improved functional value. Case studies illustrating the conversion of discarded plastics into advanced materials and biologically relevant small molecules demonstrate the potential of these approaches to stimulate innovation and expand sustainable chemical practices. Collectively, such developments align with green chemistry principles, support emerging circular chemical economies, and contribute to global sustainability priorities reflected in the United Nations Sustainable Development Goals. This review aims to outline the guiding principles of chemical upcycling and highlight the challenges in chemical design, encouraging the modern chemistry community to tap into the hidden potential of waste plastics.
The global plastic pollution crisis demands a fundamental re-evaluation of materials systems beyond incremental improvements to fossil fuel-based polymers. Bioplastics, polymers derived from renewable biological feedstocks, biodegradable under defined conditions, or both, offer a chemically diverse and rapidly evolving...
The rapid growth of the polymer industry has driven the widespread application of polyester plastics, especially polyethylene terephthalate (PET). However, the nonbiodegradability of waste PET poses persistent threats to ecosystems. Conventional mechanical recycling struggles to achieve closed-loop material circulation...
Plastic pollution remains one of the most pressing environmental challenges of the twenty-first century. Global production reached 413.8 million tons in 2023 and 430.9 million tons in 2024, while annual post-consumer waste continues to approach 300 million tons. Conventional mechanical and chemical recycling routes rem...
Aubrey Dickson Chigwada, M. Tekere· Microplastics· 0 citations
The growing use of biopolymers has positioned them as sustainable alternatives to conventional petroleum-based plastics. However, biodegradability and origin do not guarantee chemical safety, as contaminants, processing residues, functional additives, and degradation products may introduce significant human and environ...
Laya A. Smaisam, Leen Ali, Abdelmnim M. Al Tweiq et al.· Journal of Research Updates...· 0 citations
The rapid expansion of the global textile industry, driven by the fast-fashion paradigm, which is characterized by low-cost, short-lived garments made from inexpensive synthetic fibers, has intensified environmental pressures through increased waste generation, resource depletion, microplastic pollution, and greenhouse...
Fares Al-Ostoot, L. Pollegioni, E. Rosini· Biotechnology and applied bi...· 0 citations
This review consolidates current progress in plastic deconstruction, substrate conditioning, microbial metabolism, fermentation control, polymer recovery, and techno-economic and life-cycle considerations and identifies priorities for scalable and environmentally sustainable PHA production from plastic-derived substrat...
Masoumeh Mohandessi, K. Bandara, N. A. Nosratabad et al.· Biotechnology Advances· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.