Home Environment Cleaner recycling method unlocks reusable plastics from...
Environment

Cleaner recycling method unlocks reusable plastics from mixed packaging

Cleaner recycling method unlocks reusable plastics from mixed packaging
Key Points

Cleaner recycling method unlocks reusable plastics from mixed packaging Lisa Lock Scientific Editor Robert Egan Associate Editor Scientists from Nanyang Technological University, Singapore (NTU Singapore) have developed a new method to recycle mixed plastic packaging without using harmful chemical solvents—an approach that could make one of the world's most difficult waste streams significantly easier to handle. The research team from NTU Singapore's School of Materials Science and...

Cleaner recycling method unlocks reusable plastics from mixed packaging Lisa Lock Scientific Editor Robert Egan Associate Editor Scientists from Nanyang Technological University, Singapore (NTU Singapore) have developed a new method to recycle mixed plastic packaging without using harmful chemical solvents—an approach that could make one of the world's most difficult waste streams significantly easier to handle. The research team from NTU Singapore's School of Materials Science and Engineering and Nanyang Environment and Water Research Institute (NEWRI) has introduced a process called depolymerization-induced polymer separation, or DIPS. The method selectively breaks down one type of plastic in mixed plastic packaging while leaving the other plastics intact, allowing each material to be recovered and reused. The study is published in Industrial & Engineering Chemistry Research. Addressing a global recycling challenge Mixed plastic packaging, commonly used to wrap snacks, instant noodles and other food products, is designed to be tough and airtight. The packaging is made up of several different plastics bonded tightly together, making it challenging to recycle. Even if recycled, the material is often of low quality and has little commercial value. As a result, most multilayer packaging ends up in landfills or incinerators, adding to a fast-growing waste burden. Global plastic production is projected to reach 736 million tons by 2040. Lead investigator Professor Hu Xiao, who is also the Program Director for Sustainable Chemistry and Materials at NEWRI, said, "We're seeing more mixed plastic packaging used in everyday food products, but recycling it safely and efficiently is still a major challenge. Our team set out to tackle this by developing a practical, scalable way to separate these materials without using harmful solvents." Study co-author Dr. Liang Yen Nan, who is also senior research fellow, NEWRI, said, "One of the biggest hurdles in plastic recycling today is the lack of a viable way to deal with mixed plastics. This project was driven by that challenge, and our goal is to help move the industry closer to a solution that works in the real world." A solvent-free, continuous process The DIPS method uses a technique called reactive extrusion, a solvent-free, continuous industrial process in which an extruder machine—a device commonly used in manufacturing to melt and shape plastics—doubles as a chemical reactor. During processing of mixed plastic packaging, poly(ethylene terephthalate) (PET)—the plastic commonly used for drink bottles—reacts with glycerol, a cheap and widely available reagent, and is selectively broken down into smaller molecules. This PET-derived material has a different physical and chemical nature from the original plastic, causing it to naturally separate from polypropylene (PP), another common plastic used in packaging. The separation happens automatically during processing, driven by differences in the materials' polarity (a feature that determines solubility) and viscosity (a material's resistance to deformation under force). The entire process runs at room pressure and without any solvents, making it safer and potentially more cost-effective than conventional chemical recycling approaches. High-quality recycled materials In laboratory tests, the recovered PP retained mechanical properties close to those of virgin plastic, achieving up to 90% of its original tensile strength (maximum stress a material can sustain before it breaks) under optimal conditions—meaning the recycled material is strong enough for practical reuse. Using samples from post-industrial mixed packaging waste, the method successfully separated the plastic components and produced significantly better material quality compared to conventional mechanical recycling approaches. While the recovered PET cannot be directly reused, it contains chemical groups that make it potentially useful for higher-value applications such as specialty materials to replace epoxy used in wind turbine blades or for conversion into a monomer (building block of a polymer). The researchers believe the DIPS approach can be extended to other mixed plastic combinations and scaled up using commonly used industrial extrusion equipment. First author Kathirvel Periasamy, a Ph.D. student and Provost Graduate Awardee under NTU's flagship Interdisciplinary Graduate Program, said, "Our process attempts to bridge the gap between laboratory research and industrial application. By simplifying separation and eliminating solvents, we aim to make plastic recycling more economically viable and environmentally sustainable." If mixed plastic waste were efficiently recycled at scale, it could unlock an economic value estimated at more than US$250 billion annually. As a next step, the research team plans to collaborate with industry partners to validate the approach under scaled-up conditions and welcomes interest from potential collaborators. Publication details Kathirvel Periasamy et al, Depolymerization Induced Polymer Separation: A New Strategy for Continuous and Efficient Separation of PP/PET Multilayer Plastic Packaging Waste, Industrial & Engineering Chemistry Research (2026). DOI: 10.1021/acs.iecr.6c00174 Journal information: Industrial & Engineering Chemistry Research Provided by Nanyang Technological University
Robert Egan (PERSON) Nanyang Technological University (ORG) Singapore (LOCATION) NTU Singapore (ORG) NTU Singapore's (ORG) School of Materials Science and Engineering (ORG) Nanyang Environment and Water Research Institute (ORG) Industrial & Engineering Chemistry Research (ORG) Hu Xiao (PERSON) Sustainable Chemistry and Materials at NEWRI (ORG) Liang Yen Nan (PERSON) NEWRI (ORG)
Originally published by Phys.org Read original →