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Biodegradable PA

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PA6 Biodegradable: facing sustainable challenges

NUREL offers a specially designed solution for polyamide products disposed of in landfills at the end of their useful life: Promyde BIO. This new PA 6 polymer biodegrades at the end of its life, transforming into methane which, if properly captured, can be valorized as green energy. Promyde BIO, unlike oxodegradable solutions, can biodegrade in both aerobic and anaerobic media, without fragmenting under oxygen or UV rays.

Biodegradable* PA 6 for film and filament extrusion and injection moulding.

NUREL’s biodegradable polyamide 6 maintains the standard properties of PA6, degrading only when it comes into contact with an activostrong biological medium. Likewise, it can be processed through standard production processes, maintaining its recyclability. In addition, Promyde BIO is suitable for food contact.

  • Biodegradable* in soil
  • Biodegradable* in landfills
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*Note: Claims regarding biodegradability must always refer to a recognised standard. From 2022 onwards, the claim ‘biodegradable’ will not be accepted in some territories. Please consult the latest regulations for each territory.

Promyde BIO Applications

Polyamide 6 (PA 6) is used for its mechanical properties and, in many applications, cannot be replaced by other materials.

However, polyamide is a minority plastic that, due to its technical requirements and its use in complex structures such as multilayer packaging or overmoulded parts, does not usually enter recycling channels. At the end of their useful life, these products are discarded and end up in landfills, where plastics can take hundreds of years to degrade.

PROMYDE® Bio offers a sustainable solution to this problem, as it promotes the biodegradation of PA-based parts.

Biodegradable polyamides 6 are recommended for:

  • Applications where PA is required.
  • Multi-material structures such as complex packaging or overmoulded parts.
  • Injected parts for sectors such as automotive (electric cars) and household appliances.

Promyde Bio and carbon footprint

The final disposal/waste system plays an important role in the carbon footprint of any material.

The impact of the carbon footprint must be analyzed according to each disposal scenario.

The main environmental impact of Promyde BIO is related to its landfill management, where the resulting methane is captured and converted into energy, resulting in a carbon footprint reduction of up to 15%.

"Only 32.5% of plastic is recycled worldwide":

0%
RECYCLING
81% in the EU
19% outside the EU
0%
ENERGY PRODUCTION
0%
LANDFILLS

PROMYDE BIO: Main features

  • Does NOT break down with oxygen or UV rays
    (NOT oxodegradable)
  • Maintains the properties of PA6.
  • No loss of physical properties or shelf life
  • It only degrades when it comes into contact with an active biological environment.
  • It can be processed using standard PA6 production methods.
  • Maintains recyclability
  • Food contact

Impact of PROMYDE BIO’s carbon footprint

  • The final disposal/waste system plays an important role in the carbon footprint of any material.
  • The impact of the carbon footprint must be analyzed according to each disposal scenario.
  • The primary carbon impact of PROMYDE® BIO is related to landfill disposal, where the resulting methane is managed and converted into energy, providing a carbon reduction of approximately 15%.

Anaerobic biodegradation

Anaerobic biodegradability (in landfill) according to ASTM D5511. After 751 days: up to 84.2% biodegradation.

Anaerobic biodegradation occurs in oxygen-deprived environments, such as landfills, designed to reduce greenhouse gas emissions and convert them into green energy.

Promyde BIO promotes biofilm formation. Biofilm is a bacterial colony and its growth generates the enzymes necessary for polyamide metabolization.

These enzymes break down polyamide into biomass and biogas (methane).

PA is converted to methane, while reducing landfill waste volume and generating green energy (RNG/LFG).

Anaerobic biodegradation of PA6 according to ASTM D5511:

Anaerobic biodegradation test ASTM D5511 showing PROMYDE-BIO PA6 exceeding 50 percent biodegradation after 751 days compared to standard PA6
The graph shows the anaerobic biodegradation behaviour of PROMYDE BIO PA6 compared with standard PA6 over 751 days, according to ASTM D5511. PROMYDE BIO PA6 exceeds the 50% biodegradation threshold, while standard PA6 remains negligible.

Aerobic biodegradation

NUREL does not support the dumping of waste of any kind. In case of improper disposal of plastic waste, PROMYDE® BIO also biodegrades in the soil.

Thus, aerobic biodegradation (in soil) is the degradation of organic matter by microorganisms in oxygen-rich environments, such as soil.

Aerobic certification, in accordance with the ISO 17556:2020 standard, specifies a biodegradation rate of 95.6% after 348 days in active soil.

Aerobic biodegradation of PROMYDE® BIO according to ISO 17556:2020

The graph shows the aerobic biodegradation performance of PROMYDE® BIO compared with cellulose under soil conditions, according to ISO 17556:2020.
The graph shows the aerobic biodegradation performance of PROMYDE® BIO compared with cellulose under soil conditions, according to ISO 17556:2020.

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Promyde Bio

PROMYDE BIO FAQS

ANSWERS TO THE MOST FREQUENTLY ASKED QUESTIONS ABOUT PROMYDE BIO

Promyde BIO retains the same physical properties and strength as standard grades of Promyde. Your products will retain an indefinite shelf life, unaffected by light, heat, moisture or stress, until they are disposed of in an environment with microbial activity (such as landfills or active soils) where they will biodegrade into biomass, CO₂ and biogas.

 
Product Degradation by light, heat, moisture or mechanical stress Biodegradation in landfills (anaerobic) Soil biodegradation (aerobic) Residues
Promyde BIO No 1–15 years 1–10 years Biomass, CO₂, Biogas
Conventional polymers No > 100 years > 100 years Plastic resin
Compostable polymers Yes 1–15 years 1–10 years CO₂, Biogas
Oxodegradable polymers Yes > 100 years > 100 years Microplastics, metal ions, heavy metals

  • Biodegradable plastic: degrades through the action of microorganisms in aerobic (with oxygen) or anaerobic (without oxygen) environments, within an unspecified period of time.
  • Compostable plastic: decomposes under composting conditions into CO₂, water, inorganic compounds and biomass, complying with standards such as EN13432, within a specific period.
  • Degradable plastic: undergoes chemical changes under environmental conditions that deteriorate its physical properties, usually initiated by oxygen, UV light, or heat. They begin to degrade from the moment they are manufactured, reducing their useful life. Oxo-degradable polymers are banned in Europe.

logo biodegrable

Traditional plastics are durable and not designed to biodegrade easily. Their structure is based on long chains of carbon atoms that provide strength and durability, but make it difficult for microorganisms to metabolise them.

Promyde BIO accelerates biodegradation thanks to its advanced technology, which promotes the accumulation of microorganisms and facilitates the acclimatisation and production of enzymes that enable their metabolisation.

No. Promyde BIO requires an active microbial environment (such as a landfill or biologically active soil) to biodegrade.
It does not degrade in warehouses, offices, or on shelves.

The biodegradation time depends on factors such as surface area, mass, thickness, and environmental conditions.

Under optimised conditions:

  • Up to 24.7% biodegradation in 160 days under anaerobic conditions.
  • Up to 95.6% biodegradation in 348 days in active soil.

logo biodegrable

Laboratories use standardised tests such as:

  • ASTM D5511 → short-term biodegradability.
  • ASTM D5526 → long-term simulation of landfill conditions.

Each trial has a different approach and limitations, so their results should not be directly compared.

Yes. If Promyde’s standard grade complies with FDA and EU regulations for food contact, Promyde BIO will also be suitable.

ISO 17556 defines the methodology for testing the biodegradation of materials in soil.

  • The material is preferably used in powder form, although it can also be used in film, fragment, chip or profile form.
  • 100–300 g of material is used, with a maximum size of 5×5 mm.
  • To compare different polymers, it is recommended to use the same format.
  • The greater the contact surface area of the material, the higher the rate of biodegradation.

Promyde BIO is designed for applications with high technical requirements where compostable polymers are not sufficient.

Particularly suitable for:

  • Short-life applications.
  • End-of-life parts that are not recycled effectively or disposed of properly.

Other sustainable polyamide solutions

Recycled

NUREL provides high-quality recycled materials, from both pre- and post-consumer sources, to reduce environmental impact and reliance on non-renewable resources. Our range includes recycled PA, PP, and PET.

Recyclable

Thanks to our wide range of copolyamides and barrier polymers, we offer solutions that improve the recyclability of mono-material and multi-material packaging.

Biobased and Biocircular

NUREL has developed a range of solutions with bio-based and bio-circular content in order to reduce environmental impact and dependence on fossil sources.

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