Phy5646/Non-degenerate Perturbation Theory - Problem 3: Difference between revisions

(Submitted by Team 1)

This example taken from "Quantum Physics" 3rd ed., Stephen Gasiorowicz, p. 177.

Problem:

A charged particle in a simple harmonic oscillator, for which ${\displaystyle {H}_{0}={\frac {p^{2}}{2m}}+{\frac {mw^{2}}{2}}}$, subject to a constant electric field so that ${\displaystyle {H}^{'}=q{\mathcal {E}}x}$. Calculate the energy shift for the ${\displaystyle n^{th}\!}$ level to first and second order in ${\displaystyle (q{\mathcal {E}})}$. (Hint: Use the operators ${\displaystyle a}$ and ${\displaystyle a^{\dagger }}$ for the evaluation of the matrix elements).

Solution:

(a) To first order we need to calculate ${\displaystyle {H}^{'}=q{\mathcal {E}}\langle n|x|n\rangle }$. It is easy to show that ${\displaystyle \langle n|x|n\rangle =0}$. One way is to use the relation

${\displaystyle x={\sqrt {\frac {\hbar }{2m\omega }}}\left(a+a^{\dagger }\right)}$

and since ${\displaystyle A|n\rangle ={\sqrt {n}}|n-1\rangle }$ and ${\displaystyle A^{\dagger }|n\rangle ={\sqrt {n+1}}|n+1\rangle }$ we see that ${\displaystyle \langle n|x|n\rangle =0}$.

(b) The second-order term involves

${\displaystyle q^{2}{\mathcal {E}}^{2}\sum _{k\neq n}{\frac {|\langle k|x|n\rangle |^{2}}{\hbar \omega (n-k)}}={\frac {q^{2}{\mathcal {E}}^{2}}{\hbar \omega }}{\frac {\hbar }{2m\omega }}\sum _{k\neq n}{\frac {\left|\left\langle k\left|a+a^{\dagger }\right|n\right\rangle \right|^{2}}{n-k}}}$

The only contributions come from ${\displaystyle k=n-1\!}$ and ${\displaystyle k=n+1\!}$, so that

${\displaystyle \sum _{k\neq n}{\frac {\left|\left\langle k\left|a+a^{\dagger }\right|n\right\rangle \right|^{2}}{n-k}}=\left|{\sqrt {n}}\right|^{2}-\left|{\sqrt {n+1}}\right|^{2}=-1}$

and thus

${\displaystyle E_{n}^{(2)}=-{\frac {q^{2}{\mathcal {E}}^{2}}{2m\omega }}}$

The result is independent of ${\displaystyle n\!}$. We can check for its correctness by noting that the total potential energy is

${\displaystyle {\frac {1}{2}}m\omega ^{2}x^{2}+q{\mathcal {E}}x={\frac {1}{2}}m\omega ^{2}\left(x^{2}+{\frac {2q{\mathcal {E}}}{m\omega ^{2}}}x\right)={\frac {1}{2}}m\omega ^{2}\left(x+{\frac {q{\mathcal {E}}}{m\omega ^{2}}}\right)^{2}-{\frac {q^{2}{\mathcal {E}}^{2}}{2m\omega ^{2}}}}$

Thus the perturbation shifts the center of the potential by ${\displaystyle -{\frac {q{\mathcal {E}}}{m\omega ^{2}}}}$ and lowers the energy by ${\displaystyle {\frac {q^{2}{\mathcal {E}}^{2}}{2m\omega ^{2}}}}$, which agrees with our second-order result.