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What do those two states represent, physically--for example, in the beam splitter scenario?deepalakshmi said:There those two set of operator will act on two states.
What do those two states represent, physically--for example, in the beam splitter scenario?deepalakshmi said:There those two set of operator will act on two states.
They represent vacuum state .i.e zero fock state where there is no photonsPeterDonis said:What do those two states represent, physically--for example, in the beam splitter scenario?
First, only one of the two kets in your initial state is the vacuum state, the other is the coherent state.deepalakshmi said:They represent vacuum state .i.e zero fock state where there is no photons
I can write coherent state in terms of vacuum state. So I have two vacuum state. Secondly for this initial state, the final state is not entangled. Lastly I don't know anything about degrees of freedom.PeterDonis said:First, only one of the two kets in your initial state is the vacuum state, the other is the coherent state.
Second, you are missing the point. You have an initial state ##\ket{0} \ket{\alpha}##. This is a product of two kets. That means you have two physical degrees of freedom in the quantum system that this state describes. What are those two physical degrees of freedom, in, for example, the beam splitter scenario?
You then time evolve that initial state using a Hamiltonian to get a final state. That final state will also describe a quantum system with two physical degrees of freedom (but in general it won't be a product state, it will be entangled). What are those two physical degrees of freedom in the final state, in, for example, the beam splitter scenario? (Hint: they're not the same as the two physical degrees of freedom in the initial state, because of the beam splitter.)
Thanks for mentioning degrees of freedom in Quantum states. I will learn about it.deepalakshmi said:I can write coherent state in terms of vacuum state. So I have two vacuum state. Secondly for this initial state, the final state is not entangled. Lastly I don't know anything about degrees of freedom.
No, you can't. Only one term in the infinite sum of number eigenstates in the formula for a coherent state is the ##n = 0## term, i.e., the vacuum state. All the other terms have ##n > 0## so they contain some nonzero number of photons.deepalakshmi said:I can write coherent state in terms of vacuum state.
Degrees of freedom are what kets refer to. If you have a product of two kets, you have two degrees of freedom. Physically, kets generally describe physical systems that can interact with other physical systems.deepalakshmi said:I don't know anything about degrees of freedom.
PeterDonis said:No, you can't. Only one term in the infinite sum of number eigenstates in the formula for a coherent state is the ##n = 0## term, i.e., the vacuum state. All the other terms have ##n > 0## so they contain some nonzero number of photons.
Ok, so this is what you meant by writing a coherent state "in terms of" the vacuum state. I can similarly write any state "in terms of" any other state by just finding the appropriate operator to apply. So this "in terms of" doesn't seem very useful to me.deepalakshmi said:I can write coherent state as (displacement operator) ( vacuum state).
You still have not replied to the most important question I have asked, several times now: what do the two kets in your initial state ##\ket{0} \ket{\alpha}## refer to in the beam splitter scenario? To put it as simply as possible: this state says you have one "thing" that is in the vacuum state, and another "thing" that is in the coherent state ##\ket{\alpha}##. What are these two "things" in the beam splitter scenario?deepalakshmi said:I will reply later if you ask any question
can someone edit this?deepalakshmi said:This is my calculation (final state using hamiltonian) for your reference:
The initial state is##|\psi(0)\rangle = |\alpha\rangle|0\rangle##
The time evolved state is
##|\psi(t)\rangle = e^{-i H t} |\alpha\rangle|0\rangle##
## = e^{-i H t}e^{-\frac{|\alpha|^2}{2}}\sum_n\frac{(\alpha)^n}{\sqrt{n!}}|\alpha\rangle##
## = e^{-i H t}e^{-\frac{|\alpha|^2}{2}}\sum_n\frac{(\alpha)^n}{\sqrt{n!}}\frac{(a^\dagger)^n}{{\sqrt{n!}}|0\rangle|0\rangle##
Inserting #U U\dagger#
##= e^{-\frac{|\alpha|^2}{2}}\sum_n\frac{(\alpha)^n}{\sqrt{n!}}e^{-i H t}\frac{(a^\dagger)^n}{{\sqrt{n!}}e^{i H t}e^{-i H t}|0\rangle|0\rangle##
We know that #U a\dagger U\dagger=(a\dagger cos t+i b\dagger sin t )^n
##|\psi(t)\rangle =e^{-\frac{|\alpha|^2}{2}}\sum_n\frac{(\alpha)^n}{\sqrt{n!}}\frac{(a^\dagger cos t+i b\dagger sin t )^n}{{\sqrt{n!}}0\rangle 0\rangle##
Using binomial expression and using the property {(a\dagger)^n-p}0\rangle={\sqrt{(n-p)!}(|n-p)!\rangle##
##|\psi(t)\rangle =e^{-\frac{|\alpha|^2}{2}}\sum_n\sum_p\frac{(\sqrt{n!})}{\sqrt{(p!)|sqrt(n-p)!}} ((isin(t))^p)((cost(t))^n-p)\frac{(\alpha)^n}{\sqrt{n!}}|p\rangle|n-p\rangle##
Substitute #\alpha^n={ alpha^p}{alpha}^n-p#
##|\psi(t)\rangle =e^{-\frac{|\alpha|^2}{2}}\sum_p\frac{((\alpha)^p)(isin(t))^p}{\sqrt{p!}}|p\rangle\sum_n-p\frac{((\alpha)^n-p)(cos(t))^n-p}{\sqrt{n-p!}}|n-p\rangle##
##|\psi(t)\rangle=|\alphaisin(t)\rangle|\alphacos(t)\rangle##
This contradicts this:Haorong Wu said:the annihilation operator ##a## is just the same as ##b##
This means they are not the same operator, since they act on different degrees of freedom (each photon is a different degree of freedom). They are the same "kind" of operator (ladder operators on a one-photon Hilbert space), but they're not the same operator.Haorong Wu said:only that ##a## operates in the space of the first photon, while ##b## lives in that of the second photon.
It can be; each of the two input arms of the beam splitter can be described by a one-photon Hilbert space, so the input state ##\ket{0} \ket{\alpha}## would just mean that input arm #1 is in the vacuum state (nothing is being pumped into it), while input arm #2 has coherent state ##\alpha## being pumped into it.Haorong Wu said:I am not sure whether the beam splitter scenario is suitable or not.
I've edited the post as best I can, but some of the expressions don't make sense to me.deepalakshmi said:can someone edit this?
Btw, @deepalakshmi, I strongly suggest using the \ket operator in LaTeX instead of trying to manually put in vertical lines and right angle brackets. PF recently added support for the set of standard QM LaTeX codes, of which \ket is one, and it makes QM equations a lot easier to post.PeterDonis said:I've edited the post as best I can
This is how I got my final statedeepalakshmi said:This is my calculation (final state using hamiltonian) for your reference:
The initial state is
$$|\psi(0)\rangle = |\alpha\rangle|0\rangle$$
The time evolved state is
$$|\psi(t)\rangle = e^{-i H t} |\alpha\rangle |0\rangle$$
$$ = e^{-i H t} e^{-\frac{|\alpha|^2}{2}} \sum_n{ \frac{(\alpha)^n}{\sqrt{n!}} \ket{n} } |0\rangle$$
$$ = e^{-i H t} e^{-\frac{|\alpha|^2}{2}} \sum_n{ \frac{(\alpha)^n}{\sqrt{n!}} \frac{(a^\dagger)^n}{\sqrt{n!}} } |0\rangle |0\rangle$$
Inserting ##U U^\dagger##
$$= e^{-\frac{|\alpha|^2}{2}} \sum_n{ \frac{(\alpha)^n}{\sqrt{n!}} e^{-i H t} \frac{(a^\dagger)^n}{\sqrt{n!}} e^{i H t}e^{-i H t}} |0\rangle |0\rangle$$
We know that ##U a^\dagger U^\dagger=(a^\dagger cos t+i b^\dagger sin t )##
$$|\psi(t)\rangle =e^{-\frac{|\alpha|^2}{2}} \sum_n \frac{(\alpha)^n}{\sqrt{n!}} \frac{(a^\dagger cos t+i b^\dagger sin t )^n}{\sqrt{n!}} |0\rangle |0\rangle$$
Using binomial expression and using the property ##{(a^\dagger)^{n-p}} |0\rangle = \sqrt{(n-p)!}|(n-p)\rangle##
$$|\psi(t)\rangle = e^{-\frac{|\alpha|^2}{2}} \sum_n \sum_p \frac{\sqrt{n!}}{\sqrt{p!}\sqrt{n-p}!} ((isin(t))^p)((cost(t))^{n-p}\frac{(\alpha)^n}{\sqrt{n!}}|p\rangle|n-p\rangle$$
Substitute ##\alpha^n = {\alpha^p}{\alpha}^{n-p}##
$$|\psi(t)\rangle = e^{-\frac{|\alpha|^2}{2}} \sum_p\frac{((\alpha)^p)(isin(t))^p}{\sqrt{p!}}|p\rangle\sum_{n-p}\frac{((\alpha)^{n-p})(cos(t))^{n-p}}{\sqrt{n-p!}}|n-p\rangle$$
$$|\psi(t)\rangle=|\alpha isin(t)\rangle |\alpha cos(t)\rangle$$
What would you expect the final state to look like, on physical grounds? As John Wheeler once said, never do a calculation unless you already know the answer.deepalakshmi said:Is my evolution of initial state correct?
I don't know the answer. I just tried to solve it. If my calculation is right then my answer will be right.PeterDonis said:What would you expect the final state to look like, on physical grounds? As John Wheeler once said, never do a calculation unless you already know the answer.
Have you tried to think about what the answer might be, physically? That's what Wheeler was talking about: think about the physics first, before trying to do the math.deepalakshmi said:I don't know the answer.
I saw a paper which is similar to my question. There, the initial state was two coherent state which has my hamiltonian. Its final state was given as two coherent state in which each coherent state is mentioned as̃ α1 = α1 cos λt − iα2 sin λt, α 2 = α2 cos λt − iα1 sin λt. There was no calculation for this. Just answer was given in that paper. I had already given link to you for that paper.PeterDonis said:Have you tried to think about what the answer might be, physically? That's what Wheeler was talking about: think about the physics first, before trying to do the math.
What does any of this have to do with the question I asked you?deepalakshmi said:I saw a paper which is similar to my question. There, the initial state was two coherent state which has my hamiltonian. Its final state was given as two coherent state in which each coherent state is mentioned as̃ α1 = α1 cos λt − iα2 sin λt, α 2 = α2 cos λt − iα1 sin λt. There was no calculation for this. Just answer was given in that paper. I had already given link to you for that paper.
You asked me whether have I tried to think my answer? I am telling you that I took that paper as reference and got this answer.PeterDonis said:What does any of this have to do with the question I asked you?
Whether you have tried to think about what you would expect the answer to be, physically.deepalakshmi said:You asked me whether have I tried to think my answer?
So in other words, no, you have not tried to think about what you would expect the answer to be, physically. You are just accepting the authority of that paper without trying to think about what it means and whether it makes sense.deepalakshmi said:I am telling you that I took that paper as reference and got this answer.