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Resources · Materials & Technology

What our packaging is made of — and why it matters

Not all "biodegradable" is the same — understanding the materials science behind compostable packaging helps you specify the right product

01
Materials

Three base materials, blended to your application

PLA

Polylactic Acid

Derived from fermented plant starch — typically corn, cassava, or sugarcane. PLA provides stiffness, clarity, and a high bio-based content (typically >85%). It is the structural backbone of most compostable film formulations. Pure PLA is brittle; blended with PBAT, it becomes a flexible, processable film.

High tensile modulus, good transparency, bio-based, printable. Limitation: brittle alone, lower tear resistance than polyethylene.

PBAT

Polybutylene Adipate Terephthalate

A fossil-derived but fully biodegradable polyester. PBAT provides flexibility, elongation, and tear resistance — the "softener" that transforms brittle PLA into a usable film. It degrades via enzymatic hydrolysis and is a core component of virtually all certified compostable films on the market.

High elongation at break, excellent tear resistance, fast biodegradation. Limitation: lower stiffness, lower bio-based content (typically 0–20%).

Starch-Based

Thermoplastic Starch (TPS)

Uses thermoplastic starch (typically corn or potato) as the primary polymer, blended with biodegradable polyesters for processability. Offers the highest bio-based content (often >50%), prioritised by brands marketing "plant-based" packaging. Best suited for lightweight bags and liners.

Highest bio-based content, lowest carbon footprint, home-compostable capable. Limitation: lower strength, moisture sensitive, narrower processing window.

02
Performance

Technical parameters — typical ranges

Values vary by specific formulation — typical ranges for standard Esinle PLA/PBAT film. Contact our technical team for a datasheet specific to your format

Film thickness range8 μm – 200 μm
Tensile strength (MD)20 – 35 MPa (ASTM D882)
Elongation at break (MD)200 – 600% (ASTM D882)
Elmendorf tear (MD)200 – 800 mN (ASTM D1922)
Dart drop impact100 – 300 g (ASTM D1709, Method A)
Heat seal temperature130 – 160°C
Use temperature range-20°C to +55°C
Transparency (haze)5 – 30%
Shelf life (correct storage)12 months from production
03
Comparison

Compostable film vs. conventional polyethylene

An honest side-by-side — what compostable packaging does better, where it matches PE, and where it does not

PropertyConventional PEEsinle PLA/PBATNotes
Tensile strength25 – 35 MPa20 – 35 MPaComparable in most applications
Elongation300 – 600%200 – 600%Comparable at standard PBAT ratios
Tear resistanceHighModerate – highCan be matched with PBAT adjustment
TransparencyClear – hazyClear – hazyComparable; PLA tends clearer
Heat resistanceUp to 80–100°CUp to 55°CCompostable is lower — avoid hot-fill
Moisture barrierExcellentModerateBy design — biodegradation requires water access
Shelf lifeIndefinite12 monthsCompostable materials degrade by design
CostBaseline (1×)4× – 6×Reflects materials science, certification, lower scale
End of life400+ years in landfill12–24 weeks (industrial compost)The fundamental value proposition
04
How it works

Degradation: from film to compost

Week 1–4

Hydrolysis

Water molecules in the compost environment begin breaking ester bonds in PLA and PBAT polymer chains. The film starts fragmenting.

Week 4–8

Enzymatic attack

Microorganisms in the compost secrete enzymes that cleave the now-shortened polymer chains into oligomers and monomers.

Week 8–12

Mineralisation

Microorganisms metabolise the monomers into CO₂, water, and biomass. ≥90% conversion within 6 months under industrial conditions.

Week 12–24

Compost integration

No visible film remains — indistinguishable from surrounding compost. Ecotoxicity testing confirms no harmful residue.

Note: timelines assume industrial composting conditions (EN 13432). Home composting (ambient temperature) takes longer — up to 12 months.

GreenEco

Custom resin technology

GreenEco is our proprietary brand for application-specific PLA/PBAT/starch formulations, compounded in-house at our Guangzhou facility — adjusting PBAT ratio for flexibility, starch content for bio-based percentage, and additive packages for specific performance requirements

Discuss your material requirements