Phy5645/Transformations and Symmetry Problem: Difference between revisions

Symmetries(Problem taken from a quantum assignment in the Department of Physics, UF)

Problem

Consider an ${\displaystyle N}$ state system with the states labeled as ${\displaystyle |1\rangle ,|1\rangle ,...,|N\rangle }$. Let the hamiltonian for this system be

${\displaystyle \sum _{n=1}^{N}(|n\rangle \langle n+1|+|n+1\rangle \langle n|}$

Notice that the Hamiltonian, in this form, is manifestly hermitian. Use periodic boundary condition, i.e, ${\displaystyle |N+1\rangle =|1\rangle }$. You can think of these states as being placed around a circle.

(a) Define the translation operator, ${\displaystyle T}$ as taking ${\displaystyle |1\rangle \to |2\rangle ,|2\rangle \to |3\rangle ,...,|N\rangle \to |1\rangle }$ .Write T in a form like ${\displaystyle H}$ in the first equation and show that ${\displaystyle T}$ is both unitary and commutes with ${\displaystyle H}$ . It is thus a symmetry of the hamiltonian.

(b) Find the eigenstates of T by using wavefunctions of the form

${\displaystyle |\psi \rangle =\sum _{n=1}^{N}e^{ikn}|n\rangle }$

What are the eigenvalues of these eigenstates? Do all these eigenstates have to be eigenstates of ${\displaystyle H}$ as well? If not, do any of these eigenstates have to be eigenstates of ${\displaystyle H}$? Explain your answer.

(c) Next Consider ${\displaystyle F}$ which takes ${\displaystyle |n\rangle \to |N+1-n\rangle .}$ Write F in a form like ${\displaystyle H}$ in the first equation and show that ${\displaystyle F}$ both is unitary and commutes with ${\displaystyle H}$. It is thus a symmetry of the hamiltonian.

(d) Find a complete set of eigenstates of ${\displaystyle F}$ and their eigenvalues. Do all these eigenstates have to be eigenstates of ${\displaystyle H}$ as well? If not, do any of these eigenstates have to be eigenstates of ${\displaystyle H}$? Explain your answer.

Solution

${\displaystyle T|n\rangle =|n+1\rangle }$

${\displaystyle \langle i|T|j\rangle =\delta _{1,j+1}.}$ So

${\displaystyle T=\sum _{n=1}^{N}|n+1\rangle \langle n|}$ with ${\displaystyle |N+1\rangle =|1\rangle }$

${\displaystyle T^{\dagger }=\sum _{n=1}^{N}|n\rangle \langle n+1|}$ So

${\displaystyle TT^{\dagger }=\sum _{m=1}^{N}\sum _{n=1}^{N}(|m+1\rangle \langle m|)(|n\rangle \langle n+1|)=\sum _{m=1}^{N}\sum _{n=1}^{N}delta_{m,n}|m+1\rangle \langle n+1|}$

${\displaystyle TT^{\dagger }=\sum _{n=1}^{N}|n\rangle \langle n|=\left[I\right]_{NXN}}$

So ${\displaystyle T}$ is unitary.

${\displaystyle \left[T,H\right]=\sum _{m=1}^{N}\sum _{n=1}^{N}[(|m+1\rangle \langle m|)(|n\rangle \langle n+1|+|n+1\rangle \langle n|)-(|n\rangle \langle n+1|+|n+1\rangle \langle n|)(|m+1\rangle \langle m|)]}$

${\displaystyle =\sum _{n=1}^{N}[|n+1\rangle \langle n+1|+|n+2\rangle \langle n|-|n\rangle \langle n|-|n+1\rangle \langle n-1|]}$

${\displaystyle =\sum _{n=2}^{N+1}|n\rangle \langle n|+\sum _{n=2}^{N+1}|n+1\rangle \langle n-1|-\sum _{n=1}^{N}|n\rangle \langle n|-\sum _{n=1}^{N}|n+1\rangle \langle n-1|}$

${\displaystyle =\sum _{n=1}^{N}[|n+2\rangle \langle n|-|n+1\rangle \langle n-1|]}$ as ${\displaystyle |N+1\rangle =|1\rangle }$