Exploring the Cosmological Constant Problem & Zero-Point Energy

In summary, the cosmological constant problem, also known as the vacuum catastrophe, is the discrepancy between the observed value of vacuum energy density and the theoretical value predicted by quantum field theory. However, there is debate over the physical nature of zero-point energy and its connection to the cosmological constant. Some argue that it is merely a mathematical artifact, while others believe it has a physical basis. Attempts have been made to calculate the cosmological constant using general relativity, but with little success. The question remains, what is the source of the observed vacuum energy and can it be calculated accurately?
  • #36
AndreasC said:
It is exactly because they don't commute that this result is different from the same result with just p^2 and x^2.
You have the effect of this backwards. If you want the Hamiltonian to be ##\left( x^2 + p^2 \right) / 2##, then you cannot just say ##H = \left( x + ip \right) \left( x - ip \right)##, because the product of those two does not give you ##\left( x^2 + p^2 \right) / 2## in the quantum case, because of the non-commutation of ##x## and ##p##. That's why you have to add the extra correction term to the number operator ##N## to get ##H = \left( x^2 + p^2 \right) / 2##.

In other words, the correct statement is ##H = \left( x^2 + p^2 \right) / 2 = \left( x + ip \right) \left( x - ip \right) + 1/2 = N + 1/2##. (I did not express this correctly in post #28.) Whereas you are claiming, incorrectly, that ##H = \left( x^2 + p^2 \right) / 2 - 1/2 = \left( x + ip \right) \left( x - ip \right) = N##.
 
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  • #37
AndreasC said:
I took the Hamiltonian you mentioned and set all the constants to 1 for ease, then showed that when you replace x and p with operators, you can get whatever "zero point energy" you want by making algebraic manipulations to the form classical equation that don't change its essence at all.
You have not shown this. See my previous posts, especially post #36.
 
  • #38
AndreasC said:
My conclusion so far in absence of further evidence is that in the case of the oscillator it is unphysical
OK, so then why do you consider the ZPE of the entire universe - which uses exactly the dame equations as the SHO - to be physical?
 
  • #39
PeterDonis said:
If you get two different answers for the same Hamiltonian by two different methods, one of them must be wrong. The result ##H = a^\dagger a + 1/2## is the one that is accepted as correct in the literature.
... and then the inconvenient vacuum energy has to be swept away by appealing to the fact that only energy differences are actually measured. Cf. Peskin & Schroeder pp21-22 and p790.

Strictly speaking it's not the "same" Hamiltonian. The ##p^2 + x^2## is a naive transcription from classical to quantum, whereas ##(x+ip)(x-ip)## could be regarded as a better quantum Hamiltonian that still gives the familiar classical version in the limit ##\hbar\to 0##.

Related types of classical-vs-quantum quandries occurs in other situations. E.g., for the Hydrogen atom, a straightforward transcription of the classical LRL vector gives a non-hermitian quantum operator. The correct resolution (by Pauli) was to modify the quantum version in such a way that it becomes Hermitian, yet still reduces to the classical version when ##\hbar\to 0##.

This is associated with the Groenewold van Hoove theorem about essential ambiguities when trying to pass from classical to quantum.
 
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  • #40
strangerep said:
and then the inconvenient vacuum energy has to be swept away by appealing to the fact that only energy differences are actually measured.
But this isn't true in the presence of gravity, because energy gravitates. So absolute values of energy are meaningful. For example, the measured mass of a gravitating body like the Earth is an absolute value of energy, not an energy difference.

strangerep said:
The ##p^2 + x^2## is a naive transcription from classical to quantum
No, it isn't, it's the standard quantum kinetic energy operator, ##p^2 / 2m## (the poster I was responding to set all constants to 1, including ##m##), and the quantum harmonic oscillator potential energy operator. So it's kinetic plus potential energy, which is the standard way to define a Hamiltonian in QM.

strangerep said:
for the Hydrogen atom, a straightforward transcription of the classical LRL vector gives a non-hermitian quantum operator.
But this is not the case for the harmonic oscillator, both ##p^2## and ##x^2## are Hermitian so there's no need to correct anything.
 
  • #41
strangerep said:
This is associated with the Groenewold van Hoove theorem about essential ambiguities when trying to pass from classical to quantum.
As far as I can gather from a quick search, the issues identified by this theorem do not arise if the only observables we are concerned with are at most quadratic in ##p## and ##x##, so they would not arise for the harmonic oscillator Hamiltonian.

Also, the theorem does not claim or imply that zero point energy can always be eliminated, so as far as the topic of this thread is concerned, it doesn't appear to resolve anything.
 
  • #42
My extra remarks about the LRL vector, and the GvH were intended under a more general umbrella that "sometimes one must adjust the quantum operator version of a classical quantity in order to get a good physical theory". (For the QHO, it was about dispensing with the nonzero vacuum energy, for Hydrogen it was about ensuring hermiticity, while the mention of GvH was for more general cases.)

As for gravity and the QHO, we are still so far from a quantum gravity theory that I don't see much point going down that rabbit hole in this thread.

Responding to the opening post, all I really wanted to say is "yes, I regard the vacuum energy of the QHO as an artifact".
 
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  • #43
Vanadium 50 said:
OK, so then why do you consider the ZPE of the entire universe - which uses exactly the dame equations as the SHO - to be physical?
I don't, I'm just confused by why it seems to be considered physical by many physicists, and wondering if I'm missing something.
 
  • #44
PeterDonis said:
you want the Hamiltonian to be (x2+p2)/2, then you cannot just say H=(x+ip)(x−ip), because the product of those two does not give you (x2+p2)/2 in the quantum case,
Exactly, I do not want it to be x^2+p^2 in the quantum case. That's my point. That by merely quantizing the classical equation in a different manner (I found out that it actually has a name and it is called Wick and anti-Wick quantization), you get a different quantum Hamiltonian that gets rid of or amplifies the zero point energy.

PeterDonis said:
In other words, the correct statement is
No, the first term in the "difference of squares" term is the a operator, and the second is a dagger. Combined they give ##aa^\dagger=N+1##. This is anti-Wick quantization. This is the case where the "zero point energy" gets increased. If you wrote the classical Hamiltonian "difference of squares" term the other way round, you get a dagger a, which is just N. This is Wick quantization. And combining the two you can get any "zero point energy" you want. The classical Hamiltonian you posted in that last post is not even correct, you have added an extraneous factor of 1/2. Although one could claim that it is not extraneous since you can add whatever constant to a classical Hamiltonian.

Please check your calculations, and remember ##a=(x+ip)/\sqrt2##, ##a^\dagger=(x-ip)/\sqrt2##.
 
  • #45
PeterDonis said:
If you get two different answers for the same Hamiltonian by two different methods, one of them must be wrong.
Not really, because you can add whatever overall constant to the Hamiltonian and the physics does not change. The equations of motion do not care about constants.
PeterDonis said:
The result H=a†a+1/2 is the one that is accepted as correct in the literature.
Except for when it isn't because it causes problems, for instance in many cases in statistical mechanics, or the quantization of the free EM field, where the 1/2 term is ignored because it gives weird unnecessary large quantities or infinities.
PeterDonis said:
In short, it is not possible for all of the claims you are making to be true, since they are not all consistent with each other
They are once you accept that constants added to the Hamiltonian are unphysical and don't matter, and only pop up as a result of quantization ambiguity, or simply convention.
 
  • #46
strangerep said:
... and then the inconvenient vacuum energy has to be swept away by appealing to the fact that only energy differences are actually measured. Cf. Peskin & Schroeder pp21-22 and p790.

Strictly speaking it's not the "same" Hamiltonian. The ##p^2 + x^2## is a naive transcription from classical to quantum, whereas ##(x+ip)(x-ip)## could be regarded as a better quantum Hamiltonian that still gives the familiar classical version in the limit ##\hbar\to 0##.

Related types of classical-vs-quantum quandries occurs in other situations. E.g., for the Hydrogen atom, a straightforward transcription of the classical LRL vector gives a non-hermitian quantum operator. The correct resolution (by Pauli) was to modify the quantum version in such a way that it becomes Hermitian, yet still reduces to the classical version when ##\hbar\to 0##.

This is associated with the Groenewold van Hoove theorem about essential ambiguities when trying to pass from classical to quantum.
Exactly, however I am thinking that maybe we shouldn't even be saying that one is correct and the other isn't, because even when you get back to classical mechanics, adding a constant to the Hamiltonian makes no difference physically.
 
  • #47
PeterDonis said:
As far as I can gather from a quick search, the issues identified by this theorem do not arise if the only observables we are concerned with are at most quadratic in p and x, so they would not arise for the harmonic oscillator Hamiltonian.
Yes, but it shows that there is no one "perfect" quantization scheme which would imply it should be preferred. In terms quadratic in x and p, you still have different available schemes, pseudo differential quantization, symmetrized pseudo differential, Wick, anti-Wick, or others for instance the weird mix of Wick and anti-Wick I came up with to get the zero point energy to be whatever we like. Now if one of these schemes gave mathematically preferred answers always, then we could maybe say it is better and more "correct" than the others. But GvH says this does not exist.
 
  • #48
PeterDonis said:
As far as I can gather from a quick search, the issues identified by this theorem do not arise if the only observables we are concerned with are at most quadratic in ##p## and ##x##, so they would not arise for the harmonic oscillator Hamiltonian.

Also, the theorem does not claim or imply that zero point energy can always be eliminated, so as far as the topic of this thread is concerned, it doesn't appear to resolve anything.
Hey, if you know an example where it can NOT be eliminated for some reason, I'd love to see it, it's kind of the point of my thread. But the SHO is not such an example for sure.
 
  • #49
The point is that within Newtonian or special-relativistic mechanics only energy differences are observable, i.e., any zero-point energy can be subtracted. Particularly in the here discussed case of relativistic quantum field theory it's very convenient to make the ground-state energy 0 and introduce "normal ordering" for the usual perturbative calculations.

Now this changes within general relativity, because here the energy-momentum-stress tensor, describing the density of energy and momentum and their current densities, enters the right-hand side of Einstein's equation. It's important that here this energy-momentum tensor is uniquely defined as given by the variation of the matter Lagrangian under variations of the pseudo-metric components ##g_{\mu \nu}##, because that's how it enters the Einstein equation when derived from the Einstein-Hilbert action.

Now when evaluating the energy-momentum-stress tensor for a relativistic interacting QFT you have to renormalize it at some energy-momentum scale, and the renormalization-group equations tell you, how it changes when changing this renormalization scale. Now when just using the Standard Model of elementary particle physics and you look at this "running" of energy and momentum you obtain some ##10^{120}##-factor discrapancy between the observed value of the cosmological constant, which describes the acceleration of the Hubble expansion of our universe, which can be measured by combining observations of the cosmic-microwave-background fluctuations and the distance-redshift relation from Supernovae. The main culprit in this huge discrepancy between theory and observation is the Higgs boson, whose self-energy is quadratically divergent, and afaik there's no really convincing idea, how to cure this deficiency in a "natural way", i.e., to extend the Standard Model somehow such that some mathematical feature of the new model enforces the cosmological constant as predicted by the renormalization group calculation to stay small.
 
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  • #50
AndreasC said:
I do not want it to be x^2+p^2 in the quantum case.
Why not? As I've already pointed out in response to @strangerep, that's the kinetic energy plus the potential energy, i.e., the standard way to form the Hamiltonian for a quantum system. If you want it to be something else, you need to at least give some kind of physical argument for why in the quantum case the total energy should not be the kinetic energy plus the potential energy.
 
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  • #51
AndreasC said:
you can add whatever overall constant to the Hamiltonian and the physics does not change.
As I have already pointed out in response to @strangerep, in the presence of gravity this is not the case, because energy gravitates. So absolute values of energy matter; you can't just add or remove arbitrary constants. And since in this thread we are talking about the cosmological constant problem, we are certainly not ignoring gravity.,
 
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  • #52
vanhees71 said:
The point is that within Newtonian or special-relativistic mechanics only energy differences are observable, i.e., any zero-point energy can be subtracted. Particularly in the here discussed case of relativistic quantum field theory it's very convenient to make the ground-state energy 0 and introduce "normal ordering" for the usual perturbative calculations.

Now this changes within general relativity, because here the energy-momentum-stress tensor, describing the density of energy and momentum and their current densities, enters the right-hand side of Einstein's equation. It's important that here this energy-momentum tensor is uniquely defined as given by the variation of the matter Lagrangian under variations of the pseudo-metric components ##g_{\mu \nu}##, because that's how it enters the Einstein equation when derived from the Einstein-Hilbert action.

Now when evaluating the energy-momentum-stress tensor for a relativistic interacting QFT you have to renormalize it at some energy-momentum scale, and the renormalization-group equations tell you, how it changes when changing this renormalization scale. Now when just using the Standard Model of elementary particle physics and you look at this "running" of energy and momentum you obtain some ##10^{120}##-factor discrapancy between the observed value of the cosmological constant, which describes the acceleration of the Hubble expansion of our universe, which can be measured by combining observations of the cosmic-microwave-background fluctuations and the distance-redshift relation from Supernovae. The main culprit in this huge discrepancy between theory and observation is the Higgs boson, whose self-energy is quadratically divergent, and afaik there's no really convincing idea, how to cure this deficiency in a "natural way", i.e., to extend the Standard Model somehow such that some mathematical feature of the new model enforces the cosmological constant as predicted by the renormalization group calculation to stay small.
Hmm ok, this definitely goes a bit further as far as I can tell to justify the whole idea. But I want to understand here what exactly goes into figuring out that stress energy tensor via the quantum theory.
 
  • #53
PeterDonis said:
As I have already pointed out in response to @strangerep, in the presence of gravity this is not the case, because energy gravitates. So absolute values of energy matter; you can't just add or remove arbitrary constants. And since in this thread we are talking about the cosmological constant problem, we are certainly not ignoring gravity.,
Yes but the point is that if you want to do that, you have to come up with an "official" level, and the entire point is that this choice is arbitrary. There is no theoretical reason why one or the other Hamiltonian is "better" within the confines of the quantum or the classical theory.
 
  • #54
PeterDonis said:
Why not? As I've already pointed out in response to @strangerep, that's the kinetic energy plus the potential energy, i.e., the standard way to form the Hamiltonian for a quantum system. If you want it to be something else, you need to at least give some kind of physical argument for why in the quantum case the total energy should not be the kinetic energy plus the potential energy.
Or the potential energy could be the same as your potential energy plus whatever constant you want since it doesn't matter, and you haven't given a good theoretical reason why one is better than the other. As I showed even just quantizing the very same Hamiltonian in a slightly different and perfectly valid way can add a constant to it.
 
  • #55
AndreasC said:
Or the potential energy could be the same as your potential energy plus whatever constant you want since it doesn't matter
Yes, it does matter in the presence of gravity. I have already stated why, several times. Either respond to what I said about that, or please stop repeating this statement as if it has not been challenged.

AndreasC said:
if you want to do that, you have to come up with an "official" level
The obvious "official" level is the sum of the kinetic and potential energy, as I have already said. (I believe this is consistent with what @vanhees71 has said about the stress energy tensor of a quantum field, but I'll let him respond further to that as he knows more about that aspect than I do.) Again, if you are not going to respond to that obvious physical argument for why that Hamiltonian should be preferred, at least do not keep repeating the same statement as though it has not been challenged.
 
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  • #56
PeterDonis said:
[..] need to at least give some kind of physical argument for why in the quantum case the total energy should not be the kinetic energy plus the potential energy.
Last time I checked, the separation of total energy into kinetic+potential energies is not form invariant under the full group of canonical transformations -- which, in the quantum case, means under general Bogoliubov transformations that preserve that canonical commutation relations. These transformations can mix c/a operators (hence mix position and momentum operators) in complicated ways, or add/subtract constants.

In the no-gravity case, this explains why one is reasonably justified in modifying the total Hamiltonian if it yields better-behaved physics predictions.

In the with-gravity case,... who knows? Until the Einstein Field Equations are somehow reconciled to fit consistently with (some generalization of) quantum Bogoliubov transformations (QBTs), I won't be making any premature assertions. Heck, it might be that careful use of QBTs in a generalized renormalization group context could help with the "gravity-gravitates" difficulty, but without a well-developed concrete theory this is speculative, so I'll stop here.

Instead, I'll let the numbers (quantum VeVs versus the value of the cosmological constant) speak for themselves as to why the two probably have little to do with each other.
 
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  • #57
PeterDonis said:
Yes, it does matter in the presence of gravity. I have already stated why, several times. Either respond to what I said about that, or please stop repeating this statement as if it has not been challenged.The obvious "official" level is the sum of the kinetic and potential energy, as I have already said. (I believe this is consistent with what @vanhees71 has said about the stress energy tensor of a quantum field, but I'll let him respond further to that as he knows more about that aspect than I do.) Again, if you are not going to respond to that obvious physical argument for why that Hamiltonian should be preferred, at least do not keep repeating the same statement as though it has not been challenged.
Of course, in relativistic physics the notion of "a potential" is not so clear, but what you have in relativistic field theory is a Lagrangian, from which you can derive the Hamilton (density) of the fields. As long as you do special relativity an additive overall constant to the Hamiltonian doesn't matter since it's just providing a common phase factor to the states, which is not observable.

This changes when taking into account gravitation and general relativity. There additive constants in energy matter, because the energy-momentum-stress tensor is the source of the gravitational field according to Einstein's field equation.
 
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  • #58
PeterDonis said:
Yes, it does matter in the presence of gravity. I have already stated why, several times. Either respond to what I said about that, or please stop repeating this statement as if it has not been challenged.
I have responded many times but you keep misinterpreting what I said.

PeterDonis said:
The obvious "official" level is the sum of the kinetic and potential energy, as I have already said
Cool, let's go with that, now what is the potential energy and why are you so convinced it is what you are saying it is and not some other, theoretically equivalent version where a constant has been added to it? Why is your quantization scheme correct and not Wick ordered quantization, or anti Wick or whatever else? If you answer "because in gravity it matters", yes indeed it does, but it is missing the whole point because it is circular. I understand that you are saying it makes a difference when you are considering gravity, but saying it is different on its own doesn't invalidate one or the other option. I'm asking you why you believe your option for the Hamiltonian is the valid one and "mine" isn't, and you are telling me "it's because yours is different from mine and mine is the correct one". Ok but I'm trying to figure out what if any is the theoretical or observational justification for one being preferred to the other. I'm eager to hear if there is such a reason, but you have to give me that, not tell me that it matters in gravity, that's not the point. Saying it is the kinetic plus the potential energy isn't a good reason either because I can just say the constant is part of the potential energy.

I apologize if this comes off as rude, it's not my intention, I just think you have not completely understood what I'm asking.
 
  • #59
There is no right or wrong quantization scheme. As I repeatedly tried to explain in special-relativistic QFT the absolute value of the total energy is not observable, and you have to renormalize the total energy anyway. The standard renormalization is such to make the energy of the ground state (vacuum) 0.

In general-relativistic QFT, i.e., QFT in a given "classical background spacetime" you have the same problem, and if you then calculate the energy-momentum tensor of the "matter fields" you have to renormalize it too, and to adjust it to what's expected to be observed at the Planck scale needs finetuning, which is considered "unnatural" by most physicists. That's why one looks for some (symmetry) principle which explains the value of the cosmological constant, but there's no such model, let alone a solution for the notorious problem of quantizing also the gravitational interaction in a consistent way. Until there's no such theory, it's quite speculative to guess, how this problem might be solved.
 
  • #60
AndreasC said:
what is the potential energy
For the harmonic oscillator, which was the specific case we were considering, it is ##x^2 / 2##, where ##x## is the displacement from equilibrium. That's the physical definition: the potential energy is zero at the equilibrium point. To quantize that you just make ##x## the position operator, as with any other potential in QM.

More generally, the "correct" potential energy is the one whose zero point corresponds to the state that is physically picked out as "equilibrium" or something similar. For example, for an isolated gravitating body the potential energy is zero at infinity. That's how you pick out the "correct" potential from all the other mathematically possible options.
 
  • #61
vanhees71 said:
There is no right or wrong quantization scheme. As I repeatedly tried to explain in special-relativistic QFT the absolute value of the total energy is not observable, and you have to renormalize the total energy anyway. The standard renormalization is such to make the energy of the ground state (vacuum) 0.

In general-relativistic QFT, i.e., QFT in a given "classical background spacetime" you have the same problem, and if you then calculate the energy-momentum tensor of the "matter fields" you have to renormalize it too, and to adjust it to what's expected to be observed at the Planck scale needs finetuning, which is considered "unnatural" by most physicists. That's why one looks for some (symmetry) principle which explains the value of the cosmological constant, but there's no such model, let alone a solution for the notorious problem of quantizing also the gravitational interaction in a consistent way. Until there's no such theory, it's quite speculative to guess, how this problem might be solved.
Ah I see. So, if I've got this right, the argument is that the quantum theory doesn't have a unique "recipe" for calculating the stress energy tensor. About the symmetry principle, what exactly do you mean?
 
  • #62
PeterDonis said:
For the harmonic oscillator, which was the specific case we were considering, it is ##x^2 / 2##, where ##x## is the displacement from equilibrium. That's the physical definition: the potential energy is zero at the equilibrium point. To quantize that you just make ##x## the position operator, as with any other potential in QM.

More generally, the "correct" potential energy is the one whose zero point corresponds to the state that is physically picked out as "equilibrium" or something similar. For example, for an isolated gravitating body the potential energy is zero at infinity. That's how you pick out the "correct" potential from all the other mathematically possible options.
There is no reason in the classical case why the potential has to be 0 in equilibrium, it is 100% equivalent, and often used in physical problems. There is no reason in the classical theory to prefer one over the other. And even when you do assume that in the classical case, as I showed quantizing it does not give a unique valid quantum potential energy because different quantization schemes give different results. You assert that the "correct" quantum potential energy has to be 0 at something like the "equilibrium point", but I could assert that the "correct" quantum potential energy is the one such that the ground state has no energy, which also sounds very nice and valid and definitely more convenient. But we can keep having this argument forever because neither of us is making this claim based on a good theoretical reason or physical observation at this point. If anything I think the case where the ground state energy is zero is definitely the "nicest" and most convenient.
 
  • #63
I think the discussion of the non-relativistic harmonic oscillator is off-topic with respect to the cosmological-constant problem, but it's a good example to show, that an arbitrary additive constant added to the potential or the total energy/Hamiltonian is physically irrelevant:

Within non-relativistic physics there is no right or wrong choice for any additive constant to the total energy of the system, because such an additive constant doesn't change the physics. It's a kind of very simple "gauge invariance", i.e., you can use any potential which gives the force ##F=-m \omega^2 x##, which is ##V(x)=m \omega^2 x^2/2+V_0## with ##V_0=\text{const}##.

Quantizing the system you make ##x## and ##p## operators fulfilling the Heisenberg algebra ##[\hat{x},\hat{p}]=\mathrm{i} \hbar \hat{1}## and write down the Hamiltonian (where there are no operator-order problems at all):
$$\hat{H}=\frac{1}{2} \hat{p}^2 + \frac{m \omega^2}{2} \hat{x}^2 +V_0 \hat{1}.$$
Then with the usual annihilation operator
$$\hat{a}=\sqrt{\frac{m \omega}{2 \hbar}} \hat{x}+\frac{\mathrm{i}}{\sqrt{2 m \hbar \omega}} \hat{p},$$
you get
$$\hat{H}=\frac{\hbar \omega}{2} (\hat{a}^{\dagger} \hat{a} + \frac{1}{2} \hat{1}) +V_0 \hat{1},$$
and the usual argument with that there's a ground state ##|\Omega \rangle## defined by ##\hat{a} |\Omega \rangle=0## and then excited states which are given by ##|n \rangle=\hat{a}^{\dagger n}/\sqrt{n!} |\Omega \rangle## with the eigenvalues ##\hat{N} |n \rangle=n |n \rangle## with ##n \in \{0,1,\ldots \}## the ground state is the eigenstate with ##n=0##, i.e., we can also write ##|\Omega \rangle=|n=0 \rangle##.

Now, all the Hamiltonian does is to provide the time evolution of the state vectors in the Schrödinger picture,
$$\hat{U}(t)=\exp\left ( -\frac{\mathrm{i} t \hat{H}}{\hbar} \right).$$
The arbitrarily chosen parameter ##V_0## thus just provides a phase factor (as also does the "zero-point energy" ##\hbar \omega/2##), i.e., it is unobservable, because pure states are defined by Hilbert-space vectors only up to a non-zero factor (or equivalently for normalized states up to a phase factor).

So you can just choose ##V_0=-\hbar \omega/2##, so that
$$\hat{H}=\hbar \omega \hat{N},$$
which makes the ground-state energy 0. That doesn't mean that this were the only "correct choice" of ##V_0##, it's just a particularly convenient choice.
 
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  • #64
vanhees71 said:
but it's a good example to show, that an arbitrary additive constant added to the potential or the total energy/Hamiltonian is physically irrelevant:
Right, that was my point, I was replying to @Vanadium 50 , they brought it up since they believed we should look at this first and decide whether or not it is physical before looking at the whole universe.

By the way, you varied the energy by adding a constant to the classical Hamiltonian, but what I find kind of interesting is that even if you do decide a certain energy for the classical Hamiltonian, when you quantize it due to the ambiguity in quantization you can still get any zero point energy you want, so there is no way out of it even if you decide it for the classical case.

Anyways, I guess the whole problem is more like a fine tuning problem rather than a real disparity between theories and their predictions, would you agree with this?
 
  • #65
Sigh... First of all: The additive constant is physically irrelevant only within Newtonian physics and special relativity, i.e., when neglecting gravitation. Second, the zero-point energy, i.e., the energy value of the ground state (state of lowest energy) can be arbitrarily chosen (in both classical and quantum mechanics). This choice doesn't change the physics of the system, which is uniquely described by any choice.

Within GR the choice of the "zero-point energy value" is physically relevant, because it appears on the right-hand side of Einstein's field equation, i.e., any contribution to the energy density adds to the gravitational field and thus is physically observable.

We only have an incomplete description of quantum (field) theory when taking into account gravitation, i.e., all we can do so far is to keep the gravitational field classical, defining a "background spacetime". For cosmology that's the Friedmann-Lemaitre-Robertson-Walker spacetime, and then you can describe the matter and radiation by a quantum field theory within this background spacetime. The total energy of these matter and radiation fields is indetermined and has to be "renormalized" such that the corresponding cosmological constant fits the observations of cosmology, and this needs an "artificial finetuning", which is considered unsatisfactory by many physicists.
 
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  • #66
Is this thread about answering a question, or about advocating a particulalr point of view?
 
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  • #67
AndreasC said:
There is no reason in the classical case why the potential has to be 0 in equilibrium
Yes, there is: the potential energy comes from whatever energy source produces the restoring force that acts to return the oscillator to equilibrium. If the oscillator is at equilibrium, the restoring force is zero, so the energy stored in whatever energy source produces the restoring force should be zero as well. For example, in the case of a spring, the potential energy is the energy stored in the spring: if the spring is at equilibrium, the stored energy is zero.
 
  • #68
AndreasC said:
different quantization schemes give different results
But only one quantization scheme gives a potential energy that matches the classical potential energy ##x^2 / 2##. That's what picks out that particular quantization scheme as being preferred. As I've already said.

At this point I think we are just restating our positions. You are of course free to choose what you believe; but you have not given me any reason to doubt the physical arguments I have made for the position I have taken. So at this point I think we will just have to disagree.
 
  • #69
vanhees71 said:
First of all: The additive constant is physically irrelevant only within Newtonian physics and special relativity, i.e., when neglecting gravitation
I know... We've been talking about that...

I think we are saying kind of the same thing basically. If I understand correctly you are saying the problem is more a fine tuning problem than an inconsistency between predictions. I will have to look into the estimation that was carried out and turned out wrong to see what the assumptions were.
 
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  • #70
PeterDonis said:
But only one quantization scheme gives a potential energy that matches the classical potential energy x2/2.
Maybe, but it does not give a ground state energy that matches the classical case. Also adding a constant to classical potentials is very common, it's what you are doing every time you are setting a specific potential to 0 when solving circuits or chosing a ground potential for problems with a uniform gravitational field etc. Energy difference matters, not the absolute potential.

PeterDonis said:
If the oscillator is at equilibrium, the restoring force is zero, so the energy stored in whatever energy source produces the restoring force should be zero as well.
Yes, this doesn't change no matter what constant you add to the potential energy.

As you said, it matters when you start introducing general relativity into the mix. My understanding so far is that the quantum theory thus makes no unique prediction about what should be treated as the "right" level that can be confidently combined with general relativity. I think what @vanhees71 is saying is that this is the problem, that it is indetermined and would need fine tuning, not that it is determined some way and is inconsistent. Of course they can correct me if I'm understanding this wrong.
 
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