I found this question here but it does not fully answer my question. The answer there was that "composite bosons can occupy the same state when the state is spatially delocalized on a scale larger than the scale of the wavefunction of the fermions inside".
Let's say we do a BEC with bosonic atoms (for example in a harmonic trap). The BEC means that a huge number of atoms will occupy the same energy level. This cannot be exactly true because the atoms are made out of fermions. So I guess that "the" energy level is actually a collection of many different energy levels that originate somehow from the internal structure of the atoms. This effectively creates a degeneracy of "the" energy level. I think this is what he meant by "spatially delocalized on a larger scale than the scale of the wavefunction of the fermions inside".
I have a few questions regarding this:
Is this correct?
Where does these extra energy levels come from (There must be a huge amount of them)?
If there is a huge amount of internal energy states it should give a great enhancement of the density of states. Since many thermodynamic quantities depend on the density of states (for instance the particle number) this should change the thermodynamics of a gas (not only at small temperatures but also at higher ones)?
EDIT: This edit is about Chiral Anomaly's answer. I would like to do this a bit more quantitatively. Consider a sodium atom. Its Hamiltonian (like for the H-atom) can be composed in a rest frame part (which will become the spatial wavefunction of the atom later) and a internal part.
The internal part has a hydrogen-like spectrum. The quantum numbers of these states are what you called $n$. If the electrons have $k$ accessible states then there are $k$ over 11 possibilities to arrange the 11 electrons. For 20 Million atoms (as in here) you need about 34 internal states (This are all states up to $n \leq 4$). For Rubidium you need all states up to $n \leq 5$.
I'm not fully convinced of your argument because of several reasons:
This would imply that all of the atoms in a BEC are excited.
You need a specific electronic configuration for cooling and (even more important) trapping the atoms (i.e. you need one electron in a specific state). So all of those excited configurations where this state is not occupied would simply fall out of the trap.
One observes the BEC by shining light with some transition frequency on them. If all internal states are occupied there cannot be a transition.
EDIT 2:
Let's assume for a moment an idealized world. The nucleus and the electrons create a atom where the wavefunction splits into an internal part $\psi_i$ (with $k$ discrete states) and an external wavefunction $\psi(x)$. We put those atoms in a harmonic potential. Now assume that the internal structure is not affected by the potential and that there is no residual interaction between the atoms. So we can write the total Hamiltonian as $H = H_{ext} + H_{in}$ where $H_{ext} = p^2/2m + V(x) = \hbar \omega (n+\frac{1}{2})$ and $H_{in}$ is just the (independent) internal Hamiltonian.
Let's choose the groundstate of the harmonic trap to create a BEC. If the atoms were fundamental bosons this degeneracy of this energy level is 1 (which is no problem here). But now we have composite bosons so for the fermions this state has a degeneracy of $1 \times k$. So we can put at most $k$ atoms into this state. (I think we both agree on this).
Now turn on interactions. There are many different things changing.
The internal structure is affected by the potential (this is fine since it does not change the the number of states).
The atoms interact with each other. This will lift the $k$-fold degeneracy of the ground state (i.e. different atoms will have a different $e^{-iEt}$ time dependence). If the interaction is small the splitting will be small, therefore the time dependence of the atoms will be nearly equal. If we run our experiment only for a small time it will look like all the atoms have the same time dependence (BEC). If the interactions are not neglectable the level splitting will be of order $\hbar \omega$. So it will not look like all atoms occupying the groundstate but rather the two lowest states (no BEC). However now we can put $2k$ atoms into our gas because we are treating two (unperturbed) states as equal. But I doubt that this will solve the problem because as I said there won't be a BEC anymore.
Now comes the complicated part. The internal and external wavefunctions (even of different atoms) can mix. This is hard to analyze. But we know two things: 1. The overall numbers of states does not change. 2. The resulting gas must be able to form a BEC (i.e. you need enough states which have (nearly) the same time dependence). If you just crazy mix some high energy states into low energy states the nice time dependence will get lost. Also in this case all the BEC analysis would be completely wrong (since it does not account for such mixing). So I think this must be neglectable.
All in all when turning on interactions will not create extra states. Therefore if you see a BEC you have at maximum $k$ atoms in it.
Answer
A bound state of two fermions is, among other things, a state in which the two fermions are highly entangled with each other, in the sense that the bound-state creation operator can't be factorized into a product of two fermion creation operators. In this sense, entanglement is the key.
Let $a_n^\dagger$ and $a_n$ denote the creation and annihilation operators for a fermion in the $n$th mode (where "mode" accounts for momentum, spin, charge, and any other distinguishing labels).
Now, suppose that we have a bound state of two fermions. The operator that creates one of these composite bosons ("atoms") has the form $$ b^\dagger(f)=\sum_{n,m}f(n,m)a_n^\dagger a_m^\dagger \tag{1} $$ for some complex-valued function $f$. The fermion creation operators anticommute with each other (Pauli exclusion principle), so applying $a_n^\dagger a_m^\dagger$ twice would give zero. More generally, using the abbreviation $$ a^\dagger(g) = \sum_n g_n a_n^\dagger, \tag{2} $$ applying $a^\dagger(g)a^\dagger(h)$ twice would give zero. But applying $b^\dagger(f)$ twice doesn't give zero, because there are cross-terms in which all four subscripts are distinct. The number of times we can apply $b^\dagger(f)$ is limited only by the number of distinct indices on $a_n^\dagger$. Since $n$ is naively a continuous index (it includes the momentum or location degree of freedom), there might seem to be no limit at all on the number of these atoms that we can put into the same "state" $f$.
However, it's not quite right to treat the index $n$ as having an infinite number of allowed values, because saying that the atom has a finite size is kind of like putting the fermions in a box, which (in a back-of-the-envelope sense) is like restricting their momenta to a discrete list. And the momenta can't be arbitrarily large, because the atom only has a finite amount of energy. This effectively limits $n$ to a finite set of values, which in turn effectively limits the number of these atoms we can pile into the same state $f$. The spacing between the discrete momenta decreases with the increasing size of the "box" (the size of the bound state's wavefunction, including it's center-of-mass spread), so the "repulsive" effect that must limit the number of atoms (due to the interactions that I have been neglecting so far) is weaker if the atom wavefunction is more spread out. This was just a heuristic argument, but it seems consistent with the statement quoted in the OP.
Above, I used a single discrete index $n$ only for notational simplicity. To be a little more explicit, instead of writing $a_n^\dagger$, we could write $a_n^\dagger(x)$ for the operator that creates a single fermion at location $x$. (This is okay in the non-relativistic approximation.) Now the index $n$ is used only for all of the other degrees of freedom, those not already taken into account by $x$. With this more expanded notation, we can write the atom creation operator as $$ b^\dagger(f,\psi)=\int dx\,\psi(x)\int dy\, \sum_{n,m}f_{n,m}(y) a^\dagger_n(x+y)a^\dagger_m(x-y) \tag{3} $$ The way this is written, $f$ is the "internal" state and $\psi(x)$ is the atom's center-of-mass wavefunction. Then $(b^\dagger(f,\psi))^2\neq 0$. This says that we can mathematically create a state with two of these atoms, identical both in the wavefunction $\psi$ and in the internal state $f$, even though $(a^\dagger_n(x))^2=0$.
Using this expanded notation, here's another heuristic argument that leads to the same conclusion. Suppose that a single atom has "volume" $v$, in some sense. Then, within a total volume $V$, we could pack $\sim V/v$ of these localized atoms next to each other, without overlapping much. We might not call that a BEC, because we put the atoms all in different locations to avoid overlap. But now suppose that $\psi_1(x),\psi_2(x),...$ are the wavefunctions of those individual non-overlapping atoms, and consider the wavefunction $$ \psi(x)=\sum_k \psi_k(x) \tag{4} $$ with $\sim V/v$ terms in the sum, and consider the single-atom creation operator (3) with this choice of $\psi$. Applying $\sim V/v$ copies of this operator to the vacuum state will give a non-zero result that is equivalent to the state that was just described, in which we packed the atoms next to each other; but in this new description we would say that all of the atoms are in the "same state," because we constructed the state by applying a bunch of copies of the same creation operator.
The preceding arguments ignored interactions, aside from the assumption that two fermions form a bound state. If we include interactions, then we can still construct a state-vector by applying a bunch of copies of the same single-atom creation operator to the vacuum state, but the resulting state won't necessarily be a good approximation to a real BEC if the number of applications of $b^\dagger$ is large. A real BEC must involve some kind of effect that ultimately compensates for the fact that applying too many $b^\dagger$s will eventually give zero, when the cross-terms are exhausted. The state $(b^\dagger)^N|0\rangle$ might be better regarded as a component of the true BEC state, constituting most of the true BEC state when $N\ll V/v$ (dilute BEC) but contributing less and less to the true BEC state when $N$ is larger and larger. Before we reach $N\sim V/v$, the interactions that I've been neglecting will become significant, so that the transition between being able to put many atoms in an identical state and not being able to put too many in that state will be a smooth transition.
The point of the simple back-of-the-envelope analysis was only to show that we can pile a bunch of composite bosons into the same state without any significant excitation, as long as the BEC is sufficiently dilute.
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