Phy5645/HO Virial Theorem: Difference between revisions

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The average potential energy is given by
The average potential energy is given by


<math> \langle V \rangle = \frac{k}{2}\langle \hat{x}^2 \rangle.</math>
<math> \langle \hat{V} \rangle = \tfrac{1}{2}k\langle \hat{x}^2 \rangle.</math>


It is convenient to re-write the position operator as
Recall from a previous problem that


<math> \hat{x} = \frac{1}{\sqrt{2}\beta}(\hat{a} + \hat{a}^\dagger)   \text {  where  }  \beta^2 = \frac{m\omega_0}{\hbar} </math>
<math>\hat{x}=\sqrt{\frac{\hbar}{2m\omega}}(\hat{a}+\hat{a}^{\dagger}),</math>


<math> \Rightarrow \hat{x}^2 = \frac{1}{2\beta^2}(\hat{a} + \hat{a}^\dagger)^2 </math>
or


Now, we can write the average potential for the <math> n^{th} </math> state of the QHO like:
<math>\tfrac{1}{2}k\hat{x}^2=\frac{\hbar k}{4m\omega}(\hat{a}+\hat{a}^\dagger)^2.</math>
 
We can now write the average potential for the <math>n^{\text{th}}</math> state of the harmonic oscillator as


<math> \langle V \rangle = \frac{k}{4\beta^2}\langle n|(\hat{a} + \hat{a}^\dagger)^2|n \rangle </math>
<math> \langle V \rangle = \frac{k}{4\beta^2}\langle n|(\hat{a} + \hat{a}^\dagger)^2|n \rangle </math>

Revision as of 16:54, 8 August 2013

The average potential energy is given by

Recall from a previous problem that

or

We can now write the average potential for the state of the harmonic oscillator as

Now, the first two terms disappear, as the raising and lowering operators act on the eigenkets:

and the operator in the third term can be written like:

since

and

So, now we have that:

And, replacing , we find that

And can check that

Which shows rather nicely that the Virial Theorem holds for the Quantum Harmonic Oscillator.

(See Liboff, Richard Introductory Quantum Mechanics, 4th Edition, Problem 7.10 for reference.)

Back to Harmonic Oscillator Spectrum and Eigenstates