From poly-cotton waste to regenerated fibers, explore how textile-to-textile recycling brings recovered materials back into textile production.
The Gap Between Recycling and Textile-to-Textile Circularity
The textile industry generates large volumes of waste each year, yet only a small share of discarded textiles is recycled back into new clothing. One reason is the technical difficulty of recovering usable materials from complex textile products.
Mechanical recycling is one established route. Fabrics can be shredded and processed into fibers for new applications, but mechanical processing shortens fiber length and can limit the quality and applications of the resulting material. Depending on feedstock quality, recycled fibers may need to be blended with other fibers or used in applications with less demanding yarn requirements.
Textile-to-textile (T2T) recycling, also known as fiber-to-fiber recycling, aims to go further by recovering materials from discarded textiles and returning them to textile production as feedstock for new fibers.
The challenge becomes particularly significant with blended fabrics.
Why Poly-Cotton Blends Are Difficult to Recycle
Polyester-cotton blends are widely used in apparel, but their mixed composition makes them more difficult to recycle than relatively pure textile streams.
The two materials have fundamentally different properties:
Polyester is a synthetic thermoplastic polymer.
Cotton consists primarily of cellulose.
Dyes, finishes, elastane, and trims can introduce additional complexity.
Because polyester and cotton may be combined within the same yarn or fabric, simply shredding a garment does not separate the two materials.
Effective textile-to-textile recycling therefore requires technologies that can separate or selectively recover useful material fractions while maintaining sufficient quality for subsequent processing.
From Poly-Cotton Waste to New Textiles: A Commercial Example
One example of how this can work in practice comes from a collaboration involving Circ, a U.S.-based textile recycling technology company, and AceGreen Eco-Material Technology, a Taiwan-based lyocell filament manufacturer.
Circ has developed technology to recover materials from blended polyester-cotton textile waste. In the collaboration, the cotton-derived cellulose recovered from mixed textile waste was used as a feedstock for AceGreen's lyocell filament production.
The resulting filament contained 50% textile-derived recycled content and was subsequently used in a Zara womenswear collection.
The project provides a practical example of how different stages of textile-to-textile recycling can be connected: blended textile waste is processed to recover cellulose, the reclaimed cellulose is converted into regenerated filament, and the resulting material returns to an apparel application.
It also highlights an important point about circular textile systems: recycling technology is only one part of the process. Recovered materials must also be compatible with downstream fiber and textile manufacturing if they are to return to clothing production.
Source: Circ and AceGreen Announce Strategic Partnership to Scale T2T Recycling
How Textile-to-Textile Recycling Can Work
There is no single T2T process suitable for every textile composition. For polyester-cotton textiles, however, an emerging pathway combines material preparation, separation, cellulose recovery, and fiber regeneration.
1. Sorting and Pre-Processing
Discarded textiles are first identified and sorted according to composition. Buttons, zippers, trims, and other non-textile components may need to be removed before the material is cut or shredded for further processing.
2. Separating Polyester and Cotton
The polyester and cellulose fractions then need to be separated.
Different recycling technologies use different methods, including chemical and hydrothermal processes, to recover these components as separate material streams. The goal is not simply to break the fabric apart, but to obtain materials with sufficient quality for subsequent recycling or regeneration.
3. Preparing Reclaimed Cellulose
Once cotton-derived cellulose has been separated and purified, it can be processed into feedstock suitable for regenerated cellulosic fiber production.
This differs from conventional mechanical cotton recycling. Rather than relying on the remaining length of the original cotton fibers, the cellulose itself is recovered and prepared for regeneration.
4. Regenerating Cellulose into New Fiber
The reclaimed cellulose can then enter a regenerated cellulosic fiber process.
In lyocell production, cellulose is dissolved in a solvent and spun into new fiber. Depending on the production system, this can produce staple fiber or continuous filament.
The overall pathway can therefore look like this:
discarded textile → material separation → reclaimed cellulose → regenerated fiber → new textile
This approach makes it possible for cellulose from an existing garment to become feedstock for another generation of textile fibers.
Why Reclaimed Cotton Is Being Explored as a Cellulose Feedstock
Wood pulp remains an important cellulose source for man-made cellulosic fibers such as lyocell. Textile-to-textile recycling creates an additional option by recovering cellulose that has already been used in cotton-containing textiles.
Potential benefits include:
Textile waste utilization: discarded cotton-containing textiles become a potential raw-material source.
Reduced reliance on virgin feedstock: reclaimed cellulose can substitute for a portion of newly sourced cellulose.
Fiber-to-fiber circularity: textile-derived material can return to fiber production rather than moving directly into a non-textile application.
Extended material use: cellulose already circulating within the textile system can enter another production cycle.
The actual environmental impact depends on factors such as collection and sorting, recycling technology, energy and chemical inputs, transportation, and the proportion of recycled material incorporated into the final fiber. T2T recycling is therefore better evaluated as a specific supply-chain and manufacturing pathway rather than simply by the presence of a “recycled” label.
Three Challenges Textile-to-Textile Recycling Still Faces
Despite technical progress and emerging commercial applications, several challenges remain.
1. Feedstock quality and sorting. Post-consumer garments can contain multiple fibers, coatings, elastane, dyes, and trims. Accurate sorting and material identification are essential for consistent recycling.
2. Cost and commercial viability. Collection, separation, purification, and regeneration add processing steps. Costs therefore depend on feedstock availability, technology scale, production efficiency, and demand for recycled materials.
3. Scaling the value chain. Recovering material is only one part of circularity. Recycling capacity must connect with fiber manufacturers, textile mills, brands, and suitable downstream applications.
The Circ and AceGreen collaboration illustrates this last point particularly well: one company recovers material from blended textile waste, while another converts the reclaimed cellulose into filament suitable for textile production.
What Should Brands and Manufacturers Look For?
For companies evaluating recycled-content textiles, knowing that a material is “recycled” provides only part of the picture.
Useful questions include:
Is the feedstock pre-consumer or post-consumer textile waste?
What textile compositions can the recycling technology process?
How are blended fibers separated or recovered?
What percentage of the finished fiber is textile-derived recycled content?
Can the recovered material return to apparel-quality applications?
How is recycled content documented and traced?
These questions help distinguish textile-to-textile recycling from other forms of recycled-content sourcing and provide a clearer picture of how material moves through the supply chain.
From Discarded Clothing Back to Textile Production
Textile-to-textile recycling offers a pathway for materials from discarded clothing to return to textile production, but achieving that goal requires more than simply shredding old garments.
For difficult waste streams such as polyester-cotton blends, separation technologies can recover cellulose that can subsequently be regenerated into new fibers. Projects such as the Circ and AceGreen recycled-content lyocell filament collaboration, which reached a downstream apparel application with Zara, show how this pathway can work across different stages of the textile supply chain.
Further growth will depend on improvements in sorting, recycling capacity, material quality, cost, traceability, and downstream manufacturing. As these systems develop, the key measure of textile-to-textile recycling will be not only how much textile waste is collected, but how effectively recovered materials can return to useful textile applications.