Eyewear Material Dashboard

An interactive tool to assess sustainability and commercial readiness, with supporting references.

Commercialized

Acetate Renew

Eastman - Recycled + Bio-based Acetate

Made from 60% wood pulp and 40% certified recycled content.

Sustainability Profile - High

Best-in-class material. Combines a renewable or recycled feedstock with a clear, positive end-of-life story.

Development

Mycelium Leather

Bolt Threads - Bio-fabricated Material

Grown from mycelium (mushroom roots). Biodegradable.

Sustainability Profile - High

Best-in-class material. Combines a renewable or recycled feedstock with a clear, positive end-of-life story.

Market Readiness

The material shows promise, but significant R&D is still needed to refine its properties, reduce costs, and develop manufacturing processes.

Development

Algae Polymer

Checkerspot - Bio-based Polymer

Polymer derived from microalgae oil, offering unique performance characteristics.

Sustainability Profile - High

Best-in-class material. Combines a renewable or recycled feedstock with a clear, positive end-of-life story.

Market Readiness

The material shows promise, but significant R&D is still needed to refine its properties, reduce costs, and develop manufacturing processes.

Commercialized

M49

Mazzucchelli - Bio-based Acetate

Bio-acetate made from wood pulp, biodegradable.

Sustainability Profile - Low

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Commercialized

Rilsan PA11

Arkema - Bio-based Polyamide

High-performance polyamide made from renewable castor beans.

Sustainability Profile - High

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Commercialized

Grilamid BTR

EMS-Grivory - Bio-based Polyamide

Transparent polyamide made from 62% bio-based content (castor oil).

Sustainability Profile - High

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Scaling

Recycled PET

Various - Recycled Polymer

Made from post-consumer recycled plastic bottles.

Sustainability Profile - High

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Market Readiness

Technology is proven, and supply chains are being established. Cost is nearing parity with conventional materials.

Scaling

Bio-Lens

ZEISS - Bio-based Polyamide

Lenses made from bio-based polyamide (castor oil).

Sustainability Profile - High

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Market Readiness

Lab-scale production is successful. The primary challenges are now related to cost and scaling up manufacturing infrastructure.

Commercialized

Recycled HDPE

Various - Recycled Polymer

Made from recycled milk jugs and other HDPE sources.

Sustainability Profile - High

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Commercialized

Jade

Marchon - Recycled Plastic

Made from recycled plastic bottles (rPET).

Sustainability Profile - High

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Development

Rice Husk Composite

R&D - Bio-Composite

Agricultural waste (rice husks) mixed with a binder to create a hard, wood-like material.

Sustainability Profile - High

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Market Readiness

Lab-scale production is successful. The primary challenges are now related to cost and scaling up manufacturing infrastructure.

Prototype

Coffee Grind Composite

R&D - Bio-Composite

Used coffee grounds are mixed with binders to create a dark, durable composite.

Sustainability Profile - High

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Market Readiness

Lab-scale production is successful. The primary challenges are now related to cost and scaling up manufacturing infrastructure.

Development

Flax Fiber Composite

R&D - Natural Fiber Composite

Natural flax fibers are set in a bio-resin, creating a strong and lightweight material.

Sustainability Profile - High

A strong sustainable option. Typically 100% bio-based or made from a well-established, high-quality recycled source.

Market Readiness

The material shows promise, but significant R&D is still needed to refine its properties, reduce costs, and develop manufacturing processes.

Development

Recycled Carbon Fiber

Various - Recycled Composite

Uses waste from carbon fiber production. Aims to improve sustainability.

Sustainability Profile - Medium

A trade-off. Has some sustainable benefits but also significant drawbacks.

Market Readiness

The material shows promise, but significant R&D is still needed to refine its properties, reduce costs, and develop manufacturing processes.

Commercialized

MYLON

Mykita - 3D Printed Polyamide

Additive manufacturing process reduces waste, but material is fossil-based.

Sustainability Profile - Medium

A trade-off. Has some sustainable benefits but also significant drawbacks.

Commercialized

Titanium

Various - Metal

Durable, lightweight, and corrosion-resistant. Highly recyclable, but energy-intensive to produce.

Sustainability Profile - Medium

A trade-off. Has some sustainable benefits but also significant drawbacks.

Prototype

Recycled Carbon Fiber

Various - Recycled Composite

Uses waste from carbon fiber production. Aims to improve sustainability.

Sustainability Profile - Medium

A trade-off. Has some sustainable benefits but also significant drawbacks.

Market Readiness

The material shows promise, but significant R&D is still needed to refine its properties, reduce costs, and develop manufacturing processes.

Development

Recycled Textile Composite

R&D - Bio-Composite

Composite material made from shredded textile waste held in a binder.

Sustainability Profile - Medium

A trade-off. Has some sustainable benefits but also significant drawbacks.

Market Readiness

The material shows promise, but significant R&D is still needed to refine its properties, reduce costs, and develop manufacturing processes.

Commercialized

Grilamid TR-90

EMS-Grivory - Polyamide

Standard high-performance transparent polyamide, fossil-fuel based.

Sustainability Profile - Low

A conventional material with limited sustainable features.

Development

Carbon Fiber

Various - Composite

Extremely strong and lightweight, but difficult to recycle and energy-intensive.

Sustainability Profile - Low

Represents a material with major environmental challenges, such as extremely high energy use and little to no viable recycling options.

Market Readiness

An early-stage material. The core technology exists but requires fundamental research to become a viable product.

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  • Market readiness visibility
  • Structured sustainability profiles
  • Easy-to-read scoring system
  • Faster decision-making
  • Reduced development cycles
  • Reduced development cycles
  • Stronger team alignment
  • Innovation with commercial clarity

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