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is it possible to determine how far a photon has traveled if you do not know where it "started" from? I'm thinking if photons decay at a consistent rate then it might be possible.
mathman said:Since photons can start at any frequency (also for the value of other properties), there is no way to tell how far a photon has traveled just from its detection. By looking back along its path until you see something you may be able to find its origin.
LURCH said:I would only add that photons are not known to deteriorate or lose energy as they travel. There are some theories that postulate that photons lose energy and experience an increase of wavelength (decreased frequency) over great amounts of time/distance. These predictions are, by their very nature extremely difficult to support or refute experimentally, and are not generally accepted.
Chronos said:I would give a qualified 'yes' to the original question. Light from remote sources is redshifted due to expansion of the universe. Since we have measured the rate of expansion [~72 km/Mpc], you can tell how far the photon has traveled since it was emitted by its redshift - if, as chroot noted, you can find an emission line.
'Tired light' is an old, vagrant [no visible means of support] hypothesis. It is widely regarded as incorrect. Energy cannot be lost without something else gaining the same amount of energy. Only mass possessing entities participate in energy exchanges. Energy ultimately comes down to making something move - such as an electron.
Gravitational braking [gravitational redshift] of photons only occurs as a photon in emitted. Once on its way, the only effect gravity of objects along its path has is lensing. The frequency does not change. As a photon approaches a gravitational field, it is blueshifted. As it exits the gravity field, it is redshifted back to its original frequency.
In the very early universe, nearly all the radiation was originally in the gamma part of the spectrum, since temperatures were extremely high.nightcleaner said:Wouldn't the light emitted by free electrons be very high energy, say in the x-ray part of the spectrum? Near the beginning of the universe, weren't the particles very densely packed, and so the wavelengths were very short, that is very high energy?
That's correct.And now they arrive to us as microwaves, very much red shifted from their original energy? This red shift and the loss of energy are due to the expansion of the spacetime fabric?
The production of an emission line requires a "pump" -- some mechanism which continually adds energy to atoms, exciting their electrons to more energetic orbitals. If you want an emission line signal to last for millions or billions of years, you have to have some kind of a pump that operates for millions or billions of years. There was no such pump in the early universe; the atoms were certainly excited by stray gammas and thermal collisions, but there was no effective, organized pump in place.And as for emission lines, if we can detect the CMBE, should we not also be able to detect emission lines from atoms slightly later in cosmic history?
They would -- and those photons would be members of that atom's spectrum. The problem is that, for most atoms, this coming-together (perversely called "recombination") happened only one time, releasing only one photon. The early universe was "radiation-dominated," in that the vast majority of the early universe's energy was in the form of radiation. There were billions or trillions (I can probably look up a specific number if you'd like) of thermal photons for every atom. Recombination did produce some spectral emissions, but they were totally swamped by that overwhelming random thermal radiation.In fact, if all those free electrons were falling suddenly into orbitals, would they not release really a lot of photons as they dropped through the orbital levels?
Nope, a free electron becoming bound has to lose its energy somehow -- it does so by emitting a photon.Is an electron dropping into an orbital sufficient to release a photon, or does it have to be an electron excited out of an orbital and then dropping back in that creates the photon?
Nope. Photons are photons -- they just come in different frequencies. There's no way to tell two photons of the same frequency (and polarization) apart.Is there a difference between a photon created by dropping in and a photon created by getting kicked out?
Yes.1. Did the cmbe start out as high energy xrays?
Cosmological redshift.2. If so, what happened to the energy as they were redshifted to the present microwaves?
Yes, although it would be more accurate to say the energy went into the work of slowing the universe's expansion.3. Could we suppose that the lost energy went into the work of expanding the universe?
The signal to noise ratio is too much small to ever make such a measurement possible.4. If we can detect the cmbe, do we also detect photons due to later collapse of the electrons into orbitals?
Quasars are just juvenile galaxies with active cores -- they have nothing to do with the CMBR. Quasars didn't come onto the scene until (probably) hundreds of millions of years after recombination.The only candidates that come to my innocent mind are quasars. Then why do we detect quasars as points while we detect cmbe as a universally dispersed themal energy?
Since the universe is not infinitely old, and the speed of light is not infinite, we can only see part of the universe, that within about 43 billion light-years' distance. The entire universe might be curved enough to allow light to "circumnavigate" it, but light from one quasar has certainly not had time to propagate round-trip around even around the part of the universe accessible to us.5. Is it possible that there is really only one quasar and we see it in many different directions because the light from the quasar has gone all the way around the universe?
It takes energy to get an electron into a higher orbital, but the atom will emit a photon when that photon falls back to a lower energy level.6. Is a photon the result of an electron dropping into an orbital, or of getting excited into a higher orbital, or either, or only both together?
Macroscopically, a single photon only goes in a single direction, rather like a bullet. Of course, if you make the photon contend with very small obstructions, you will begin to see its wave nature -- it will diffract, for example. On a cosmological scale, however, you can just think of photons as bullets.Does a photon emitted by a rising and/or falling electron radiate out in a single direction or does it radiate outward equally in all directions?
A single, individual photon will be detected by only one antenna at a time.If we detect an incoming photon from a detector like the Very Large Array, is it detected by only one or two of the antennae or is it detected collectively by all of them together?
QED deals with "virtual photons" which travel all possible paths, including those that would violate the speed of light. The statistical contributions from all these paths are summed, and the result is the path that a real photon could travel. Even if you'd like to think of photons as simultaneously taking all possible paths to "decide" where to arrive, they indisputably arrive at only one spot on your detector screen.When a photon strikes a phosphorescent screen, is it striking only that one spot or is it striking the entire screen? I am thinking of QED, where a photon is thought of as striking the entire surface of a glass sheet, not really just a single point as we imagine in calculations using Snell's law of refraction.
chroot said:There's no need to do a specific experiment -- we already know quite well that small dishes separated by a large distance -- for example, two small dishes 5,000 miles apart -- achieve the same resolution as a theoretical dish 5,000 miles wide.
Laser light actually does spread out over distance -- just not as much as, say, a flashlight.
A prism won't do anything to laser light at all but change its ultimate direction; laser light is composed of only one frequency (color) and thus will not be spread out by the prism. It sounds to me like your professor's prism was being moved around, and the beam was bouncing all over the room -- bad idea.
- Warren