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I'm a 3D artist trying to learn the basic (or perhaps even intermediate) level of physics of photorealistic rendering. But most artist and tutorials on the internet have little to no clue of the physics behind all the settings they tweaking to get a good rendering. I want to understand what it is I'm actually doing :)

So my question is: Why don't dielectric materials have coloured reflections like conductors? Metals like copper tint the reflection with a red-ish color, but a red rubber ball does not, why is that?

In this image you can see the reflection of the white and blue pencil is being tinted slightly yellow in the brass material.

enter image description here

I was once told that the white reflection was caused by the reflection of the coating material, and the coloured diffuse reflection was the reflection of the pigments inside. That makes sense for like oil based paint were you actually mix pigments in oil, and the oil becomes the white reflective coating layer, and the same thing goes for plastics I guess. The plastic is actually white or transparent but they add all the colour pigments in it.

In this image you can see the white reflections in the blue plastic, the mirror image in the plastic is NOT being tinted blue.

enter image description here

But what about, let's say an red apple? Is the apple peel some sort of oily coating layer filled with red pigments? Or is it just made out of "apple peel molecules" and it is simply the physical/chemical properties of these atomic/molecular bonds that effect the light in that way?

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  • $\begingroup$ A red rubber ball does colour the reflected light. It only reflects less light than a shiny copper surface and the reflection is diffuse so there will be no distinct spot of reflected light. Nevertheless the effect can easily be observed. $\endgroup$ – Sebastian Riese Oct 19 '15 at 23:44
  • $\begingroup$ But if you look at a shiny plastic surface you see a mirror image. But if you look at a shiny coloured metallic surface the mirror image is tinted in the colour of the metal. Why does this happen for metals but not for plastics? $\endgroup$ – Kristoffer Helander Oct 20 '15 at 6:56
  • $\begingroup$ Oh, now I get it. I'll try to write an answer. $\endgroup$ – Sebastian Riese Oct 20 '15 at 7:31
  • $\begingroup$ I've updated the original post with some more details. $\endgroup$ – Kristoffer Helander Oct 20 '15 at 7:32
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The short answer is: Because metals are really absorptive (which comes from the fact that the nearly free electrons in the metal follow the oscillations of the radiation thereby depleting its energy), but some only in part of the visible range.

The reflectivity of a material is given by the Fresnel equations in terms of the index of refraction. They describe the angle dependency and further tell you that the higher the difference in the index of refraction the more light will be reflected at the interface.

It is important to understand, that the index of refraction in general can be a complex number. The imaginary part of the index of refraction describes the absorption of the material, while the (well known) real part describes the usual "optical density" causing refraction. So there are to possibilities for a material to reflect strongly: Either because it has a large real part of the index of refraction (like diamond) or because it absorbs light strongly (like metals). The latter effect can also be seen with lines written using a dark overhead transparency marker: They reflect in the colour range that does not pass through.

So, the reflection on the surface of metals is mainly due to the imaginary part of the index of refraction (that is, the absorptivity). For coloured metals like copper or gold the so called "plasma frequency" of the metal above which the metal begins looses its strong absorptivity is in the visible range (or in the near UV). Therefore such metals only reflect a portion of the spectrum well you get a tinted reflection.

The other materials (plastic, glass, apples) have one thing in common: They have a relatively low absorptivity (while for metals the wave only enters a few nanometers, the other materials range from transparent to waves entering at least several micrometers; the absorption caused by pigments in the material is typically much weaker than the one in metals). This means that the reflection is caused by the change of the real part of the index of refraction. As most materials are only slightly dispersive in the optical range, this means that all frequencies are reflected more or less equally, therefore the reflection is not tinted.

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  • $\begingroup$ Wow! That's an amazing reply - thanks! It did however raise more questions then answers because I only have limited understanding of physics beyond high school level. But you gave me a lot of things to search for, so I will read up on this and get back to you to see if I have understood it correctly. Again thanks! $\endgroup$ – Kristoffer Helander Oct 20 '15 at 15:01
  • $\begingroup$ One very confusing part of all this is that you say that metals are really absorptive, that sounds backwards, if the metall absorbs light very well, then how come there is a reflection at all - shouldn't it just be a very diffuse and dark surface? Like a matte black object, kind of like a piece of charcoal? $\endgroup$ – Kristoffer Helander Oct 20 '15 at 15:22
  • $\begingroup$ While this seems paradoxical at first, a perfectly absorbing surface will reflect all light. Perhaps absorptive is not the perfect word. The point is, that metals attenuate the electromagnetic wave within a few nanometers. Not much of the energy of the incident wave actually reaches deep into to metal. This is similar to a surface with the boundary condition that the field vanish there (for which we know there is total reflection). Materials that are black attenuate the light more slowly or have a rough surface, so that the reflection is suppressed by multiple reflections. $\endgroup$ – Sebastian Riese Oct 20 '15 at 15:40
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Plastics and biologic materials are very similar to the paint example you gave: they are basically transparent (well, translucent), and their color come from pigments inside. So the first air/material dioptre the light encounter is (mostly) color-neutral (at least for smooth surfaces), and specular is caused by the Fresnel term on this surface. Diffuse color really comes from the light entering the medium and diffusing once or more on pigments (+ligand, possibly).

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It seems like the answers here are a bit "too clever" - one can simply look into the Photoelectric Effect in order to understand why Metals are Much more reflective than any other dielectric material.

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    $\begingroup$ Could you expand on why you think the photoelectric effect helps? $\endgroup$ – Kyle Kanos Feb 13 at 10:56

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