TheHutch
- 8
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- TL;DR
- All modern versions of the double slit experiment use lasers to produce a coherent light source, but the experiment also works with sunlight (as originally performed by Young). This light is made 'spatially coherent' by passing through a single slit, but the transmitted photons will still have random phase relationships. How does interference arise with random phase photons?
I have been looking at various sources, especially the (now closed) thread on PF classical optics "Coherence, Young's double slit experiments."
The trick to making the double slit experiment work with incandescent, as opposed to laser, light is to pass it through an initial single slit 'to make it coherent'. Confusingly, this does not seem to be at all the same coherence as coherent laser light.
@sophiecentaur explained the resulting interference as follows:
"real light [...] can be thought of as consisting of many short wave trains. Each wave train will interfere 'with itself' when it is split between the two slits and meets on the other side."
As far as I can see, real light (from an incandescent source) consists of a stream of uncorrelated photons, with entirely random phase relationships, so these short wave trains can only be the individual photons, and the only way interference patterns can emerge is if these photons interfere only with themselves, and not with each other. The purpose of the single slit is simply to constrain the spatial origin of photons making the interference pattern crisper. In other words, the interference is a quantum phenomenon of individual photons, and not some aggregate wave nature of light. The fact that interference is still seen when reducing the photon flux down to one at a time should be no surprise at all.
Is that understanding correct? I haven't seen it in any text books (maybe I just haven't read enough).
For laser light, perhaps the photons' coherence make cross-photon interference possible (by making photons indistinguishable?), a bit more like the traditional wave explanation given in school text books. That makes the experiments simpler to perform, but obscures what is really going on.
The trick to making the double slit experiment work with incandescent, as opposed to laser, light is to pass it through an initial single slit 'to make it coherent'. Confusingly, this does not seem to be at all the same coherence as coherent laser light.
@sophiecentaur explained the resulting interference as follows:
"real light [...] can be thought of as consisting of many short wave trains. Each wave train will interfere 'with itself' when it is split between the two slits and meets on the other side."
As far as I can see, real light (from an incandescent source) consists of a stream of uncorrelated photons, with entirely random phase relationships, so these short wave trains can only be the individual photons, and the only way interference patterns can emerge is if these photons interfere only with themselves, and not with each other. The purpose of the single slit is simply to constrain the spatial origin of photons making the interference pattern crisper. In other words, the interference is a quantum phenomenon of individual photons, and not some aggregate wave nature of light. The fact that interference is still seen when reducing the photon flux down to one at a time should be no surprise at all.
Is that understanding correct? I haven't seen it in any text books (maybe I just haven't read enough).
For laser light, perhaps the photons' coherence make cross-photon interference possible (by making photons indistinguishable?), a bit more like the traditional wave explanation given in school text books. That makes the experiments simpler to perform, but obscures what is really going on.