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Proprietary technologies designed for performance and sustainability.
Engineered polymer systems with tuneable structure, response and function.

Shape Memory Polymers (SMPs) are advanced smart materials engineered to temporarily deform and recover their programmed shape in response to a specific stimulus, most commonly heat.
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Engineered Gel Polymers are highly tunable polymeric materials designed to combine softness, elasticity, energy absorption, and controlled deformation while maintaining structural integrity.
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Nanocellulose-Reinforced Polymers combine polymer matrices with nanoscale cellulose structures to create lightweight, high-performance materials with enhanced mechanical strength, stiffness, dimensional stability, and potentially improved barrier properties.
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Cellulose Hydrogels are three-dimensional, water-rich polymer networks derived from cellulose that combine high water retention, biocompatibility, softness, and tunable mechanical properties.
View technologyFunctional textile platforms engineered for shielding, conductivity, luminescence and thermal performance.

Advanced polymeric and textile-based materials engineered to attenuate X-ray radiation while maintaining flexibility, durability, and manufacturing versatility.
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Photoluminescent technology for lasting visibility
Glow-in-the-Dark (GiD) Technology is an advanced phosphorescent material platform based on strontium aluminate chemistry, engineered to provide high-intensity, long-lasting luminescence without batteries, wiring, or external power.

Next-generation thermo-conductive fiber technology
Graphene-Embedded Performance Yarn is a next-generation functional yarn engineered by permanently integrating graphene into the polymer matrix during melt spinning, making its functionality intrinsic to the fiber rather than dependent on surface treatments.

An advanced functional material platform that combines passive far-infrared (FIR) interaction and negative-ion functionality within fibers, yarns, textiles, coatings, foams, films, elastomers, and other polymer-based materials.
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Magnetic Textiles are advanced functional fabrics engineered by embedding magnetic particles directly within polymer fibers, yarns, coatings, or textile structures to create textiles with controllable magnetic properties.
View technologyFlexible sensing integrated directly into textiles, polymers and finished products.
FinixTek's Wearable Electronics & Smart Sensors platform combines flexible pressure, moisture, proximity, and heating technologies that can be seamlessly integrated into textiles, garments, polymers, films, seating systems, medical devices, furniture, and consumer products. Designed for lightweight, flexible, and scalable integration, the platform enables the development of next-generation intelligent products across healthcare, industrial, automotive, aerospace, defense, robotics, agriculture, and consumer markets.
Renewable, bio-based and circular material solutions.

Carbon Fiber Alternative Technology is an advanced polymer-based composite platform designed to provide a lower-carbon alternative to, or complement for, traditional carbon fiber in applications where mechanical performance, durability, weight, cost, and design flexibility are important.
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Sustainable natural fiber from agricultural waste
Pineapple Leaf Fiber (PALF) is a high-performance natural fiber derived from pineapple leaves, transforming an abundant agricultural by-product into a renewable material for textile, composite, and technical applications.

Sustainable polymers from renewable sources
Bio-Based polymers are advanced polymer compounds that integrate renewable, naturally derived fibers or particulates into thermoplastic matrices such as polypropylene, reducing fossil-based content while maintaining the durability, processability, and performance required for industrial applications.

Plant-Based Carbon Black is an engineered renewable carbon material produced from sustainably sourced cellulosic biomass, offering manufacturers a pathway to reduce reliance on fossil-derived carbon while maintaining functional performance across a range of industrial applications.
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