Colour Laser Marking on Plastics: How Contrast and Colour Are Achieved with Additives

Key Takeaways

  • Dark marks come from carbonisation, light marks from foaming — the two fundamental mechanisms on polymers.
  • Additive chemistry decides what colours are achievable, far more than the laser does.
  • Pulse duration steers the mechanism, which is why MOPA sources give the widest colour and contrast range.
  • Colour must be measured, not judged by eye — CIELAB and ΔE give the only defensible specification.

Most people associate laser marking with a simple dark or light mark on a plastic surface. But advanced additive chemistry has expanded what’s possible: today, manufacturers can achieve high-contrast black marks on white substrates, bright white marks on dark parts, and in some systems, controlled colour response. Understanding how these effects are produced — and what governs their quality — is essential for engineers specifying laser marking processes for appearance-critical applications.

The Two Fundamental Mark Types: Dark and Light

The vast majority of laser marks on plastics fall into one of two categories:Dark marks (carbonisation) occur when laser energy causes the polymer matrix — or an additive within it — to undergo thermal decomposition, producing carbon-rich residues that appear black or very dark brown. This mechanism is the basis for marking most dark-pigmented or additive-loaded plastics with fibre lasers.

Light marks (foaming) occur when laser energy rapidly heats a localised volume of plastic, vaporising a portion of the polymer and creating a network of tiny gas bubbles within the melt. The resulting foamed surface scatters light diffusely and appears white or light gray, even on a dark substrate. This is the mechanism behind the high-contrast white marks visible on dark-coloured ABS, PC, and PA components in automotive interiors and electronics.

How Laser-Sensitive Additives Create Contrast

In natural or lightly pigmented polymers that absorb little near-infrared energy (fibre laser at 1064 nm), achieving reliable marks requires laser-sensitive additives — compounds specifically designed to absorb laser energy and initiate a colour-forming reaction.

The most widely used additive chemistry is based on antimony tin oxide (ATO), bismuth-based compounds, and proprietary metal oxide pigments. When irradiated by a fibre laser, these additives absorb energy efficiently and trigger localised carbonisation in the surrounding polymer matrix, producing dark marks with high contrast — even on white or transparent substrates.

For light marks on dark backgrounds, different additive systems work by ablating the dark colourant from the surface layer or by producing a light-scattering foam structure. The Society of Plastics Engineers has published research on additive selection criteria across common polymer families.

True Colour Laser Marking

Beyond black and white, some additive systems and laser configurations can produce coloured marks on plastics. Two mechanisms are relevant:Interference colour effects on metals are well-established — controlled oxidation of stainless steel and titanium surfaces produces thin oxide layers that create structural colour through light interference, yielding gold, blue, purple, and red tones at different power/speed combinations. On plastics, this mechanism doesn’t apply directly.

For plastics, colour marking typically relies on multi-layer or multi-pass techniques, where different additive-laden layers are selectively ablated or activated to reveal colour beneath. This is most developed in the security document and premium branding segments. Research published in the Journal of Applied Polymer Science has explored photochromic and thermochromic additive systems for plastics that shift colour upon laser exposure.

Key Additives and Their Roles

  • Antimony tin oxide (ATO): Produces dark marks on light substrates. Widely used in PA, PP, PC, and ABS. Excellent contrast and FDA food-contact clearance in some grades.
  • Bismuth oxychloride: Produces light marks on dark substrates. Common in automotive interior parts requiring white serial numbers or logos on black housings.
  • Laser-absorbing carbon black: Used at low concentrations to enhance near-IR absorption without significantly darkening the base material colour.
  • Mica-based pearlescent pigments: Can produce metallic or iridescent mark effects on some polymer systems when combined with appropriate laser parameters.

Process Variables That Control Mark Colour and Contrast

Even with the right additive, mark quality depends critically on laser parameters:

  • Power density (fluence): Too low and the additive doesn’t fully activate; too high and the surrounding material discolours or chars.
  • Scan speed: Slower speeds increase energy deposition per unit area — useful for darker marks but can cause thermal spread.
  • Pulse frequency: Affects pulse overlap and mark texture. Higher frequencies produce smoother, more uniform marks.
  • Number of passes: Multiple passes at lower power can build mark depth and density without overheating the substrate.

For appearance-critical applications — consumer products, luxury goods, automotive interiors — mark development should include a full parameter matrix across power, speed, and frequency settings, with colorimetric measurement (using CIE L*a*b* colour space) to quantify contrast and colour shift. Sabreen’s application engineering team provides additive selection guidance and parameter development for colour-critical laser marking projects.

Related Reading

Need help with this?

The Sabreen Group provides independent engineering support for colour and contrast development through additive formulation. Our engineering services team works with manufacturers on process development, material qualification and production troubleshooting. Contact us to discuss your application.

Frequently Asked Questions

How are light-coloured marks made on dark plastic?

By foaming. Short pulses generate gas within the melt that is trapped as microbubbles, and those bubbles scatter light to produce a white or light gray mark. This is the standard way to make a legible mark on a black part.

Can lasers produce true colour marks on plastics?

In specific systems, yes. Certain laser-sensitive additives undergo chemical changes that yield defined colours, and some pigments can be selectively bleached. The achievable palette is determined by the additive package rather than by the laser.

Which additives are used?

Antimony-doped tin oxide, bismuth-based compounds, mica-based pigments and carbon black are all common, each favouring different contrast behaviour. Selection depends on the base resin, the target colour and any regulatory constraints.

What process variables control mark colour?

Pulse duration above all, then repetition rate, marking speed, power and focus. Pulse duration decides whether energy accumulates as heat, which drives carbonisation, or is deposited quickly, which favours foaming.

How should mark colour be specified?

In CIELAB coordinates with a ΔE tolerance, verified with a spectrophotometer against retained physical standards. For machine-readable codes, specify contrast and a verification grade rather than colour.


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