A translucent CMY Cube held to the light, its faces overlapping into colours the eye rarely sees

What Are the Forbidden Colours Your Eyes Cannot See?

The forbidden colours are reddish-green and yellowish-blue. They are called forbidden because your visual system is wired so that red and green cancel each other out, as do yellow and blue. You can see a reddish-yellow (orange) or a bluish-green (teal), but a colour that is simultaneously red and green, in the way orange is simultaneously red and yellow, is something your brain is built not to produce. It is not that the colour does not exist in the world. It is that the last step of seeing refuses to make it.

Key facts at a glance


  • The forbidden colours are reddish-green and yellowish-blue.
  • Your visual system codes colour in opponent pairs, so one channel cannot report red and green at once.
  • Researchers have made some observers see them by holding red and green fields perfectly still on the retina.
  • They cannot be printed, photographed or shown on a screen, only briefly produced in a brain.

Here is why, and what happens when researchers trick the system.

Why can't we see reddish-green?

Because of how colour is coded after it leaves the eye. Your retina has three kinds of cone cells, roughly tuned to long, medium and short wavelengths. But you do not perceive three separate signals. The nervous system rewires them into opponent pairs: one channel reports red versus green, another reports yellow versus blue, and a third reports light versus dark. Each channel is a single dial. It can swing towards red or towards green, but it cannot point both ways at once. A colour that was both red and green would need the same dial at both ends of its range. That is the forbidden part.
The same logic applies to yellow and blue. Orange and purple are allowed because they combine colours from different dials. Reddish-green and yellowish-blue are not, because they ask one dial to contradict itself.

Has anyone ever seen the forbidden colours?

People have reported it under laboratory conditions. The classic method shows a red field and a green field side by side and uses an eye tracker to hold each image perfectly still on the retina, so the boundary between them stops being a boundary. Some observers report that the border dissolves and a colour appears that they have never seen and cannot name, which they describe as red and green at the same time. Others see the fields fade to a muddy blend. The effect is real enough to have been studied and argued over for decades, and it remains contested, which is a fair description of most interesting things in perception.

What everyone agrees on is that these colours cannot be shown in a photograph, on a screen, or in paint, because those all pass through the same opponent wiring on the way in. You cannot print a forbidden colour. You can only, briefly, trick a brain into making one.

Are forbidden colours the same as impossible colours?

Forbidden colours are one kind of impossible colour. There are two other kinds worth knowing. Chimerical colours are the ones you see in afterimages: stare at a bright yellow square, look at a white wall, and the blue afterimage that appears is a blue with no wavelength behind it. Stare at a black square and then look at white and you get, for a moment, a white brighter than white. And hyperbolic colours are the impossibly saturated versions you get by fatiguing one channel and then looking at its opposite: an orange more orange than any orange that light can produce. These are all colours the brain can make but the world cannot supply.

Then there is olo, the colour produced in 2025 by stimulating only the medium-wavelength cones with a laser, which is impossible in ordinary light because any real wavelength that excites those cones also excites their neighbours. Observers described a blue-green of a saturation they had never encountered. Forbidden colours break the opponent wiring; olo breaks the cone overlap. Different trick, same lesson: colour is built in the brain, and the brain has rules.

Can you see something close to a forbidden colour at home?

You can see the wiring that forbids them, which is more instructive. Take a strong magenta filter and look through it at a bright white wall for twenty seconds, then take it away. The wall goes green. You have fatigued the red end of the red-green dial and it has swung the other way on its own. Do the same with yellow and you get a blue afterimage. That swing is the opponent channel in action, and it is the reason reddish-green cannot exist: the dial has two ends and one needle.

A CMY Cube is a tidy way to run the experiment, because it carries all three subtractive primaries on one object. Look through the magenta face, then the yellow, then the cyan, watching the afterimage each time. You will see green, blue and red appear from nothing, in that order, which is the opponent system reporting back. The science page explains the cone and channel physics in full.

Why does this matter beyond the party trick?

Because it settles an old argument about where colour lives. Wavelengths exist in the world. Colour does not; it is what a brain does with wavelengths. Forbidden colours are the clearest proof, because they are perfectly possible as light and perfectly impossible as experience. Once you know that, a sunset, a printed photograph and a colour cube all look slightly different. You are not looking at colour. You are looking at your own visual system doing arithmetic.

The short version

Reddish-green and yellowish-blue are forbidden because red and green, and yellow and blue, are coded as opposites on single channels that cannot point both ways. A few people have glimpsed them under laboratory conditions. You cannot print them or display them. You can see the wiring that forbids them with a coloured filter and a white wall, and the lesson is that colour is made in the brain, not found in the world.

Hold the three primaries in one hand, and see light through a different lens.

What are CMY Cubes?

CMY Cubes are translucent objects made in the three subtractive primaries, cyan, magenta and yellow. Turn one in the light and the faces overlap into new colours, the same way a printer builds every colour from three inks.

Are CMY Cubes for children or adults?

Both. They are solid acrylic, safe to handle and simple enough for a child to enjoy, but most of our customers are adults who keep one on a desk or windowsill and pick it up between tasks.

Which CMY object should I start with?

The Original CMY Cube. It carries all three primaries on one object and shows the whole idea in a single turn. The Aether and Motus add geometry, the CMY Pack gives you the primaries as separate cubes, and the PolySquish is the soft, squeezable version.

CMY Cubes

The CMY Cubes Team

CMY Cubes is an Australian maker of translucent colour-mixing objects grounded in the science of light. We write about colour, optics, geometry and the small everyday curiosities that make people look twice, and we check every claim against the physics before it goes on the page.

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