- #36
Naty1
- 5,606
- 40
A photon is the size of the appropriately vibrating (bosonic) string.
So in this view it's size depends on which dimension you measure.
So in this view it's size depends on which dimension you measure.
Suspect there has been a mistranslation: 'particulate photon' simply meant 'photon(s) as particle(s)', not as you seem to have interpreted it 'a particular (i.e. single) photon'. Without computing what realistic heat loss rates from screen to environmet might be for a [STRIKE]particular[/STRIKE] specific setup, it nonetheless seems likely one could have say hundreds or thousands of field quanta impinging per second, yet that input power is lost to the environment at a rate too high for any significant energy accumulation in the screen between photoejection events. Not a problem for particle picture, since all the needed photoemission energy is there at point of any given impact. Anyway we are arguing around in circles on this - if I can find some cryogenic photoelectric effect studies, will post on it.A. Neumaier said:If it is a single photon, spread out over a large sphere, then there is essentially no chance to detect it
experimentally except by putting very sensitive detectors on a large fraction of the sphere. And if you get somewhere a recording event, how do you know that it came from your source and not from somewhere else, unless you ensure that the whole huge sphere you were entertaining in your thought experiment is completely dark - an impossibility on a large scale.
Thus your ''particular photon'' assumption is quite infeasible to test.
MikeGomez said:The main point about using visible light in this example is that wavelength is much smaller than the diameter of the hole. So then, what about when we attempt to pass photons of radio frequency through the hole of the same size?
A lot will depend on the details of the opaque plate - is it a good conductor, is it thick or thin wrt hole diameter. Assuming a thin metallic plate, and hole diameter << wavelength, a wave incident normal to the plate will induce currents making the hole act as an effective magnetic dipole oscillator that leaks a small amplitude wave through. Microwave theory shows the amplitude is proportional to the cube of aperture diameter. In terms of photons, one would have to translate that into a probability of transmission. If the plate is relatively thick wrt aperture size, then transmission is greatly reduced, the aperture then acting as a small length of below-cutoff waveguide. I think, but not completely sure, the angular intensity profile for a small aperture in a screen of large extent is just that of a small dipole oscillator.MikeGomez said:In this case of course, we have some different kind of apparatus which can detect these longer wavelength photons (perhaps a receiving antenna instead of a screen). Now the wavelength of the photon is much larger than is the diameter of the hole. But does that matter? Will the antenna still detect our radio photon?
sophiecentaur said:As you say, light has a very short wavelength and we instinctively picture a 'hole' as being bigger than one wavelength. The 'bullets idea' then very easily follows. But, if you follow the wave model, any gap will have a diffraction pattern - so some energy must get through. The actual amount of energy would be given by the energy flux density times the area of the hole. That (from hf) tells you how many photons must be getting through every second. This is right for 1500m wavelength em and a keyhole. The pattern of such a narrow aperture will be more or less hemispherical - that implies that photons are equally likely to be detected (the Archers of Radio 4 Long wave, even) at any angle.
I really do love waves. Such uncomplicated things.
Don't want to sound too sceptical but that concept is certainly new to me! Can you cite a published article expounding this model in some detail?edguy99 said:...Consider a photon with a phase component (it knows where it is in the wave equation). It is very tiny (less then 3 fm), flies through the air at the speed of light, but on a periodic basis expands in its direction of travel, up to 1/2 its wave length in size (in this case 315nm), then down to tiny again...
Q-reeus said:Don't want to sound too sceptical but that concept is certainly new to me! Can you cite a published article expounding this model in some detail?
edguy99 said:Consider a photon with a phase component (it knows where it is in the wave equation). It is very tiny (less then 3 fm), flies through the air at the speed of light, but on a periodic basis expands in its direction of travel, up to 1/2 its wave length in size (in this case 315nm), then down to tiny again.
sophiecentaur said:The phase of a traveling or standing wave can predict how the photon is likely to react (statistics again).
Just how 'big' is a photon?
Cthugha said:Here one really has to take care. You get something similar to an uncertainty relation when discussing phase and that is an uncertainty in the field quadratures which roughly translates into an uncertainty between phase and photon number. So if you really want to talk about a single photon (n=1), then the phase of the corresponding light field is ill defined. If you talk about single detection events of a coherent field, its ok.
YummyFur said:Of course. The above post is ironic. I think you mean 'facetious'. [wink]
sophiecentaur said:Phase always refers to some time origin so, unless you could be more specific then the concept of the phase of a single photon would have no meaning - unless you could say something about when it was 'created'.
sophiecentaur said:The only thing we can say fairly definitely is that a photon is a defined amount of energy that can be transferred when em power interacts with a system.
Cthugha said:Nevertheless the "classical concept" of a photon, as you call it, should indeed be dead and buried.
Last bit is fine, but of course for a classical EM plane wave that works both ways - circular polarization can be decomposed into orthogonal linearly polarized waves. The matter of associating spin = intrinsic angular momentum, with CP (circular polarization) is a bit tricky. While it's easy to show that say crossed dipole antennas as a source of CP waves react on each other to give a net time-averaged torque, there is a seemingly paradoxical lack of any EM reaction torque when a normal incident CP wave is absorbed by a resistive sheet say. Which makes it very hard to reconcile photon spin with field CP. One is forced to find the field angular momentum as due to a net non-radial component in the Poynting vector of the combined radiation field of the CP source emitter.sophiecentaur said:Polarisation seems a red herring to me - taken care of by the wave model, entirely (afaics). A classical wave with circular polarisation carries angular momentum so the statistics of the photons 'in' that wave allows the photons to have spin. Linear polarisation can be regarded as consisting of suitably paired spinning photons.
Not sure of the point here. At 50Hz the capacitor field is local = near-field = virtual photons right out to such distances it becomes negligible. There is some finite radiation, but incredibly weak....Again, using wavelengths that are not optical, can open the view of what goes on; does a particle that would have to extend to most of a country make sense in a capacitor that is 2cm long?
So - no classical torque resulting from CP absorption? Awkward. Would there be no circular induced currents, to account for it?Q-reeus said:Last bit is fine, but of course for a classical EM plane wave that works both ways - circular polarization can be decomposed into orthogonal linearly polarized waves. The matter of associating spin = intrinsic angular momentum, with CP (circular polarization) is a bit tricky. While it's easy to show that say crossed dipole antennas as a source of CP waves react on each other to give a net time-averaged torque, there is a seemingly paradoxical lack of any EM reaction torque when a normal incident CP wave is absorbed by a resistive sheet say. Which makes it very hard to reconcile photon spin with field CP. One is forced to find the field angular momentum as due to a net non-radial component in the Poynting vector of the combined radiation field of the CP source emitter.
Consequently just how a 'point' particle photon can carry an intrinsic angular momentum, apart from mathematical postulate, is hard if not impossible to visualize. In the case of an electron say, there is this concept of the 'dressed' charge and spin angular momentum might be considered as residing in some finite effective volume of virtual particles surrounding the 'bare' charge. But for a photon - is there a feasible 'point particle corkscrew motion' model applicable, or must one accept sheer mathematical postulate only? But then I suppose we are meant to accept the lesson is 'stop trying to visualize - there are no physical models that work, period!'
Not sure of the point here. At 50Hz the capacitor field is local = near-field = virtual photons right out to such distances it becomes negligible. There is some finite radiation, but incredibly weak.
Well there is a net circular acting sheet current, but the magnetic interaction, making the usual assumption purely transverse motion of charges applies, yields no net torque. This is most easily seen by considering the CP wave as two spatially and temporally orthogonal linearly polarized plane waves. For each such component, E and B are mutually orthogonal and transverse to the propagation vector k. Consequently the B component of one wave is parallel to the current (which is in the direction of E) induced by the other wave. And as we know from Lorentz force law, when J and B are parallel, there is no magnetic force. Hence no mutual interaction, regardless of relative phase.sophiecentaur said:So - no classical torque resulting from CP absorption? Awkward. Would there be no circular induced currents, to account for it?
Well vp's are not my original idea - and I'm aware the notion is hotly disputed here at PF/QM. Was merely equating 'accepted' terminology. Personally I'm agnostic as to reality of vp's - out of sheer ignorance of all the subtle arguments if nothing else.My point was that one has to 'bend' the geometrical characteristic of the photon in order to 'fit' the practical situation. You have introduced the notion of virtual photons to take care of what you call near field and that could be ok, I suppose.
That more or less fits many peoples view - quadrature = zero time-averaged Poynting vector = reactive field(s) = 'virtual photons'. We left out static fields but let's not go there!If you look at the fields due to a transmitting dipole, the fields change from E & H in quadrature in the near field and E & H in phase in the far field. The virtual photons presumably relate to this local quadrature fields?
I agree. Yet while the search for a physical model that is universally applicable may be futile, surely along the way we can gain insights, if nothing else by eliminating models that just do *not* work other than on an ad hoc basis.There still seems, to me, to be a wierdness with wanting photons to, somehow, be different from individual to individual. A photon that is sourced in a distant star must, surely, be identical to one sourced locally if the two of them can interact in the same way with the same receiver.
jtbell said:With a large number of photons, we get a diffraction pattern just like the one we get with light when we use a much smaller hole:
http://hyperphysics.phy-astr.gsu.edu/hbase/phyopt/cirapp.html
Single photons arrive at the screen or detector randomly according to a probability distribution which is just the classical intensity distribution:
http://hyperphysics.phy-astr.gsu.edu/hbase/phyopt/cirapp2.html#c2
As the wavelength increases, for the same diameter hole, the width of the central maximum increases. With radio waves (e.g. UHF with a wavelength of around 0.2 m) going through a hole 0.02 m in diameter, the central peak of the diffraction pattern more than fills the entire forward hemisphere beyond the aperture, so the aperture behaves almost as a "point" source of radio waves.
Which in order to square with Lorentz invariance, would seem to demand truly point particles, yes?Dickfore said:Photons do not even have a position, because, unlike non-relativistic QM, in relativistic QFT there is no probabilistic meaning attached to the wave function considered as a function of space-time coordinates.
Instead, its meaning is revealed in Second Quantization. Namely, the wave function gets promoted to a field operator that creates (annihilates) at a particular point in space, at a particular instant in time.
Implying that for electron, virtual particle dressing cannot be invoked as seat of intrinsic angular momentum? If so this is a little disturbing because it signifies a total departure from any classical notion of what angular momentum entails at minimum - a finite moment arm! Showing my ignorance of QM/QFT here.In QM, as well as QFT, elementary particles (those with which we associate a wave function or a field) are truly point particles. So, even if you had asked what is the size of the electron, you would have gotten an answer that it is a point particle.
This is an example to my mind of what was said earlier - mathematical postulate completely divorced from any intuitive physical connection. I'm sure it 'works', but there must be some explanation of how say magnetization reversal does yield classical angular momentum change.Dickfore said:angular momentum in quantum mechanics is the generator of rotations and is not defined as in classical mechanics.
In what way?But, you are derailing this thread.
You are suggesting one EM field reacts upon another *directly*. But that is contrary to the (classical) superposition principle.MikeGomez said:The real photon is some manifestation of the EM field, and it therefore seems to me quite reasonable for it to react with the virtual EM fields in such a way as to create diffraction patterns, probability distributions, etc.
Gave you one in #41. Incident field (bunch of photons) excites sheet currents in plate surface, which flow also within the hole boundary and out the other side of plate. In turn acting as re-radiators (secondary source of photons). A small number go on to the detector. That was for plate as a good conductor. If on the other hand it was a good absorber, transmission would still occur but radically altered in magnitude, and I think the estimate in #40 of direct proportionality to hole area may then be closer to the mark.Or are there other explanations?
Define "physical connection" and then we can accept your criticism as justifiable. Also, rotations form a symmetry group. Specifying the angular momentum quantum number tells in what representation of the symmetry group does the object belong to. Continuous symmetries and conservation laws and selection rules play a fundamental role in Quantum Mechanics.Q-reeus said:This is an example to my mind of what was said earlier - mathematical postulate completely divorced from any intuitive physical connection.
Q-reeus said:I'm sure it 'works', but there must be some explanation of how say magnetization reversal does yield classical angular momentum change.
No doubt correct, but like a million others have bemoaned, it seems to be just one layer of abstraction upon another until there is no 'connection' with anything that can be sensibly visualized. For instance certain states that are mathematically distinct but identical re observables. Having a very classical background doesn't help warm one to that, but if theory and experiment agree, well that's that I guess.Dickfore said:...Also, rotations form a symmetry group. Specifying the angular momentum quantum number tells in what representation of the symmetry group does the object belong to. Continuous symmetries and conservation laws and selection rules play a fundamental role in Quantum Mechanics.
Fine but I was not arguing that a point particle cannot have angular momentum - merely that it cannot be reconciled with fundamental classical criteria.I am not denying that angulatr momentum exists. I am simply saying that your logic of reasoning that defining angular momentum as [itex]\vec{L} = \sum_{a}{\vec{r}_a \times \vec{p}_a}[/itex] and saying that a point particle has a zero arm means that it cannot have an intrinsic angular momentum (spin) is flawed because the definition does not apply in QM.
As per above, would just like to know how the quantum point particle regime transitions to the classical, spatially extended regime - if possible. No doubt that means reading a good book.You can see this if you make the classical limit [itex]\hbar \rightarrow 0[/itex], while keeping the spin quantum number fixed (an intrinsic property of the particle). We see that the spin angular momentum tends to zero, as we would reach by your suggested line of reasoning.
First of all, about the "million others" part. There are of the order of 100 good universities in the U.S., each giving of the order of 10 physics graduates each year. That amounts to the order of 1000 U.S. graduates per year. Take one more order of magnitude and you get 104 graduates in the World per year. At that rate, it would take of the order of 100 years to reach million physicists. Quantum Mechanics had been known for about that time. So your claim is highly improbable, because it would mean that every physicist that graduated doubts Quantum Mechanics.Q-reeus said:No doubt correct, but like a million others have bemoaned, it seems to be just one layer of abstraction upon another until there is no 'connection' with anything that can be sensibly visualized. For instance certain states that are mathematically distinct but identical re observables. Having a very classical background doesn't help warm one to that, but if theory and experiment agree, well that's that I guess.
Which is fine, since the classical criteria do not extrapolate to Quantum Mechanics. This is why I pointed out to the different point of view on physical quantities through symmetry in Quantum Mechanics.Q-reeus said:Fine but I was not arguing that a point particle cannot have angular momentum - merely that it cannot be reconciled with fundamental classical criteria.
Q-reeus said:As per above, would just like to know how the quantum point particle regime transitions to the classical, spatially extended regime - if possible. No doubt that means reading a good book.
sophiecentaur said:...I started this thread in an attempt to put to bed the very classical picture of a photon that most people seem to want (going so far as to construct animations, even). It seems to be a very diehard concept; almost like angels of a pinhead.
Nice math - except I never referred to graduates. Had in mind more the millions of ordinary folk who pick up a pop-sci best seller and get that feeling of sinking into a dark place.Dickfore said:First of all, about the "million others" part. There are of the order of 100 good universities in the U.S., each giving of the order of 10 physics graduates each year. That amounts to the order of 1000 U.S. graduates per year. Take one more order of magnitude and you get 104 graduates in the World per year. At that rate, it would take of the order of 100 years to reach million physicists. Quantum Mechanics had been known for about that time. So your claim is highly improbable, because it would mean that every physicist that graduated doubts Quantum Mechanics.
Interesting interview. Could take this a number of ways, but I'm trying not to take it as a personal put-down implying I'm 'intellectually challenged' like Feynman (having a real bad day - never seen him so combative) seems to have regarded the clueless interviewer. I will rather try and just get the eventual point there that classical concepts are pretty useless when it comes to QM/QFT.Second of all, the word "visualize" means that you try to create an alternative model based on outdated concept involving macroscopic objects such as "billiard balls" traveling at very low speeds compared to the speed of light and pulled by strings or elastic bands. You cannot "visualize" properties of microscopic particles, particles from which the above physical constructs are created in the first place, in that manner. See this video:
http://www.youtube.com/v/wMFPe-DwULM
But isn't the relativistic requirement in turn only because QFT casts it all in terms of those creation/annihilation operators that act instantly at a point - or so I gathered from #57:Okay, you mentioned yourself that elementary particles must be point particles due to the finite speed of propagation of interactions (second postulate of Relativity in a modified form). This has nothing "quantum" about it. The word "classical" means two things in Physics:
Classical as in non-quantum, and Classical as non-relativisitc.
The requirement for "zero size" of elementary particles is more of a requirement of Relativity than it is of Quantum Mechanics.
Even the Physics graduates are considered incompetent to do relevant research in the topics mentioned, let alone laymen. Their opinion is irrelevant for the discussion at hand.Q-reeus said:Nice math - except I never referred to graduates. Had in mind more the millions of ordinary folk who pick up a pop-sci best seller and get that feeling of sinking into a dark place.
DId you watch through the whole thing. At one point he discusses (electro)magnetic forces and the inability to "visualize" them in terms of elastic bands. This is a similar situation where quantum phenomena (such as intrinsic spin of a particle) are visualized in terms of spinning tops.Q-reeus said:Interesting interview. Could take this a number of ways, but I'm trying not to take it as a personal put-down implying I'm 'intellectually challenged' like Feynman (having a real bad day - never seen him so combative) seems to have regarded the clueless interviewer. I will rather try and just get the eventual point there that classical concepts are pretty useless when it comes to QM/QFT.
Q-reeus said:But isn't the relativistic requirement in turn only because QFT casts it all in terms of those creation/annihilation operators that act instantly at a point - or so I gathered from #57:
"Instead, its meaning is revealed in Second Quantization. Namely, the wave function gets promoted to a field operator that creates (annihilates) at a particular point in space, at a particular instant in time.".
So the two go hand-in-hand surely? Not trying to be argumentative here - like crabby Feynman above.
Dickfore said:Asking for the size of an elementary particles is meaningless within QFT, because an extended object cannot be characterized by 4 space-time coordinates.
(emphasis as in the original; see p.2 of the book'QED, or relativistic quantum field theory in general, is not based on the notion of ''point particles'', as one sees stated so often and yet so erroneously.
(beginning of Section 3.9 ofIt is often said that the electron is a point particle without structure in contrast to the proton, for example. We will see in this section that this is not true. The electromagnetic structure of the electron is contained in the form factors
No argument here - familiar enough with the classical electron radius/'Poincare-stresses' issues.Dickfore said:In fact, electrodynamics is a classical field theory. It fails miserably when predicting the behavior of a charged point particle. The easiest way to see this is to calculate the energy of the electrostatic field due to a charged point particle. The electric field is inversely proportional to the distance squared and the energy density is proportional to the intensity of the field square, thus inversely proportional to the fourth power of the distance. The volume of a spherical shell is proportional to its surface, which in turn is proportional to the distance squared. Thus, the volume integral is an integral over the radial coordinate from zero to infinity of a function that is 1/r4×r2=1/r2. The integral of this function diverges as 1/r at r=0.
Yes looked at some of the Abraham-Lorentz self-force issues in Jackson etc and no classical way out. But never studied the quantum resolution. Leaving that to you folks.If we use the relation between energy and mass, it would mean that the charged point particle should have infinite electromagnetic mass. If we assign a finite mass to it, it means that we had subtracted off an infinite mass of non-electromagnetic origin to get a finite result. Since this procedure of subtracting two infinities is mathematically ambiguous, we get all sorts of inconsistencies. For example, Classical Electrodynamics predicts that an accelerated charged point particle should emit electromagnetic waves. These waves carry energy and momentum, so the particle should "feel" some deceleration force (Radiation reaction force). This force is proportional to the time derivative of the acceleration of the particle. Solving the equation. It means that if the particle had a non-zero acceleration, it would accelerate arbitrarily close to the speed of light, which is absurd.
Elaborate is the word, and I have no intentions of challenging such an edifice.Quantum Field Theory tries to tackle such divergences and many more in a procedure known as "renormalization", where the "subtraction of infinities" is done in a controlled manner at every order of a small parameter (in the Quantum theory of Electrodynamics, the small parameter is the fine-structure constant). This elaborate procedure has become known as Renormalization Group.
Thanks for that helpful summary - no further questions; what's more badly overdue for the cot. :zzz:So, to recapitulate:
The "pointness" (in a lack of a better term) is a necessary requirement of Relativity. When coupled to a fundamental interaction of Nature - electromagnetism - it leads to absurd results in the classical (non-quantum) regime. Quantum Theory (which in the relativistic regime is necessarily a Field Theory) does a good job of eliminating many of the absurdities.
Asking for the size of an elementary particles is meaningless withing QFT, because an extended object cannot be characterized by 4 space-time coordinates. There must be additional degrees of freedom that describe its internal structure - thus making it not elementary. The photon, at our present level of understanding, is an elementary quantum of the electromagnetic field. Thus, it does not have any size associated with it.