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No, part of the definition of a tetrad is that one is timelike and three are spacelike. So none can be null.martinbn said:Technically they (the null vectors) do form a tetrad, but not a reference frame.
No, part of the definition of a tetrad is that one is timelike and three are spacelike. So none can be null.martinbn said:Technically they (the null vectors) do form a tetrad, but not a reference frame.
Well, we had this debate some time ago, and I still stand to what I said: A reference frame is something realizable by an experimentalist. The most simple example we have in everyday life is a clock at the wall of my office and one corner of the office with three (orthogonal) edges, is a realization of a reference frame. This is a pretty accurate realization of @Dale's tetrades. I don't think that Wikipedia is so bad in this case (it's even pretty good).Dale said:Although often we use the term "reference frame" to mean "coordinate system", this is one case where the difference becomes important. The technical term for a reference frame is a tetrad. It consists of a set of four vector fields covering some section of spacetime. Three of the vector fields are spacelike and one is timelike and they are orthonormal. So even though you can define coordinate systems with null basis vectors, the basis vectors of those coordinates do not form a tetrad or reference frame
Now I think that even the serious sources don't follow the same convention.Dale said:Yes, I guess that we would need to get more authoritative references than Wikipedia!
is there atmospheric influence at such a scale..if its not a vacuum then there is stuff a photon may interact with. A photon always goes c. Some parts of it faster !jerromyjon said:Photons only move at c in a vacuum...
nitsuj said:A photon always goes c. Some parts of it faster !
I would like to believe photons always travel at c but there is currently no way to prove that (that I've heard of). By some parts do you mean the phase velocity? That I have heard can exceed "c" in some sense, but it would require multiple photons to have a phase, wouldn't it?nitsuj said:A photon always goes c. Some parts of it faster !
See sections 3.3 and 3.4jerromyjon said:I would like to believe photons always travel at c but there is currently no way to prove that (that I've heard of).
That's the speed in a vacuum, I meant in matter, where the refractive index "slows" light.Dale said:
NoTe said:I was wondering about the possibility of decay of photons, but read that this could not occur because the photon's time stood still.
NoTe said:is decay of photons possible?
The general view, I think, is that time isn't an applicable concept for a photon, since a reference frame 'moving with' a photon isn't possible.NoTe said:I was wondering about the possibility of decay of photons, but read that this could not occur because the photon's time stood still. Since this argument isn't valid at all, - it leaves my question: is decay of photons possible? This is not just a question; if decay of photons is possible, we may see the universe quite different from what it really IS! (Because the photons arising from far away objects have decayed in the mean time) Let's say a mean decay time of days or so - this doesnot have any influence on our solar system.
exceptCarrock said:In special relativity, you can make the the frequency or momentum etc of a photon any arbitrary finite value you want, by choosing an appropriate reference inertial frame from which to measure it.
Similarly, in GR, any apparent bending, doppler shift etc is a result of curved space etc and using a non-local reference frame to calculate the apparently changing state of the photon.It would be possible, by using suitable different local inertial frames near different points on the photon's path, to calculate the photon's state to be unchanging.
i.e. by using 'correct' inertial frames, photons' state can be calculated to never evolve.
It's perhaps worth mentioning that the changing state of moving neutrinos is regarded as strong evidence they have mass.
which is simply an assertion.jerromyjon said:Yes, I'm specifying that [the energy of a photon must be defined by a comoving inertial frame]. Many things affect the wavelength of photons, time is not one of them.
Carrock said:The general view, I think, is that time isn't an applicable concept for a photon, since a reference frame 'moving with' a photon isn't possible.
Carrock said:To go from this to saying that photons are timeless (i.e. without defined time) is OK IMO.
Carrock said:No one seems to have directly disagreed with my previous post
'Saying that the concept of "time" does not apply to them' also often leads to incorrect inferences; I subjectively find the latter more annoying.PeterDonis said:...Unfortunately, [saying that photons are timeless (i.e. without defined time)] doesn't seem to work in practice; as soon as you say photons are "timeless" instead of saying that the concept of "time" does not apply to them, people start drawing incorrect inferences...
PeterDonis said:Your statements in that post are not incorrect, but they're not really useful either. When we're talking about the energy of a photon, what we really care about is its energy relative to some observer or object that it is interacting with...
It's often useful to think the photon is changing during its (unobservable) flight. Since an object can always be chosen such that the absorbed photon is in the same state as when it was emitted, and emission and absorption are the only times a photon's state can be observed, there is no requirement for a photon's state to evolve over time.Dale said:Without anthropomorphising, photons are governed by the laws of QED, which do include the way a photon's state evolves over time. Whether that implies they "experience" time is more a question of semantics than physics
what do you mean "slows light"jerromyjon said:That's the speed in a vacuum, I meant in matter, where the refractive index "slows" light.
Carrock said:Saying that the concept of "time" does not apply to them' also often leads to incorrect inferences
Carrock said:I was simply trying to indicate that it's never necessary to have photons' energy, momentum etc change.
Carrock said:Since an object can always be chosen such that the absorbed photon is in the same state as when it was emitted
Carrock said:A particle's state 'really' evolving during flight, like a neutrino, is generally regarded as proof mass is associated with it.
Google "slowed light" and pick one of the 37 million hits.nitsuj said:what do you mean "slows light"

NoTe said:I was wondering about the possibility of decay of photons, but read that this could not occur because the photon's time stood still. Since this argument isn't valid at all, - it leaves my question: is decay of photons possible?
in aggregate light seems like it is going slower...its absorbed by atoms and emitted, is that even the "same" photon?. But goes c in between...light, or photons always go c. Vacuum or not.jerromyjon said:Google "slowed light" and pick one of the 37 million hits.
The speed of light NOT in a vacuum is not "c". I'm still not sure if it slowed between atoms or if it is just delayed by interactions or if it is even relevant to anything in physics.
Tio Barnabe said:After reading again my first post and all responses that followed from it, I think we could realize that time doesn't pass for light in Einstein's theory.
Tio Barnabe said:But photons are of Quantum Mechanics and in the latter theory, time evolves.
Tio Barnabe said:There's no reference frame where time doesn't evolve
That is not correct. "c" is taken as the universal speed limit and it light were found to have mass, "c" would remain the same but would no longer be the speed of light. The point, then, is that light does NOT travel at "c" in various media, so your statement "vacuum or not" is incorrect.nitsuj said:.light, or photons always go c. Vacuum or not.
Mister T said:You can apply the same argument, if a neutrino is massless it travels at speed ##c## and therefore, loosely speaking, can't experience time and therefore cannot change flavor.
I mean, the proper time variation for light in Relativity is zero. But in Quantum Mechanics there's only one time, namely the coordinate time and it can take on different values. Is it not so?PeterDonis said:What does "time evolves" mean? And how does it make QM different from classical relativity?
Sure, that's what I said.PeterDonis said:If this is the case, then "time evolves" in classical relativity too
Tio Barnabe said:I mean, the proper time variation for light in Relativity is zero.
Tio Barnabe said:in Quantum Mechanics there's only one time, namely the coordinate time