Difference between revisions of "Quantum Qual Problems"

Latest revision as of 21:13, 17 August 2007

1.) Given a quantum mechanical particle of mass $M$ confined inside a box of sides $a,b,c$ . The particle is allowed to move freely between $0 \lt x \lt a, 0\lt y\lt b$ and $0\lt z\lt c$ .

Use the time-independent Schrodinger equation for this problem to obtain the general form for the eigenfunctions of the particle

Now apply boundary conditions to obtain the specific eigenfunctions and eigenenergies for this specific problem.

Assume $a=b=c$ and find the first 6 eigenenergies of the problem in terms of the box side length ( $a$ ), the particle mass ( $M$ ) and standard constants. What are their quantum number? Make a sketch of the eigenvalue spectrum, a table listing these eigenenergies and the quantum numbers of all the states that correspond to them.

Solution: Qal_QuantP1S

2.) A system has two energy eigenstate with eigenvalues $w_1$ and $w_2$ . Assume that $w_1 \gt w_2$ . Representing the enegy eigenstate by $\begin{pmatrix}1 \\ 0\end{pmatrix}$ and $\begin{pmatrix} 0 \\ 1\end{pmatrix}$ . The Hamiltonian can be written as $H_0= \begin{pmatrix} w_1 & 0 \\ 0 & w_2\end{pmatrix}$

a.) We introduce and interaction $H_1$ whose matrix elements, using the above basis vectors, are $H_1= \begin{pmatrix} 0 & v \\ v & 0\end{pmatrix}$ where v is real. Find the exact values of the energies of the new Hamitonlian, $H=H_0 + H_1$

b.) Assume that $w_1 - w_2 \gt \gt |v|$ . Use time independent perturbation theory to compute the first and second order corrections to the energy levels of $H_0$ when $H_1$ is treated as a perturbation.

c.) Let $w=w_1=w_2$ in $H_0$ above. Assuming the system is initially in the eigenstate $\begin{pmatrix}1 \\ 0\end{pmatrix}$ of $H_0$ , and the interaction $H_1$ is turned on for a finite time interval $T$ . Find the probabitlity that the system will be found in the state $H_0= \begin{pmatrix} w_1 & 0 \\ 0 & w_2\end{pmatrix}$ at the end of that time interval.

@@ Line 7: / Line 7: @@
 *  Assume <math>a=b=c</math> and find the first 6 eigenenergies of the problem in terms of the box side length (<math>a</math>), the particle mass (<math>M</math>) and standard constants.  What are their quantum number?   Make a sketch of the eigenvalue spectrum, a table listing these eigenenergies and the quantum numbers of all the states that correspond to them.
+Solution: [[Qal_QuantP1S]]
-Solution:
+.) A system has two energy eigenstate with eigenvalues <math>w_1</math> and <math>w_2</math>.  Assume that <math>w_1 > w_2</math>.  Representing the enegy eigenstate by
+<math> $\begin{pmatrix}1 \\ 0\end{pmatrix}$ </math>
+and
+<math> $\begin{pmatrix} 0 \\ 1\end{pmatrix}$ </math>.
+The Hamiltonian can be written as
+<math>H_0=  $\begin{pmatrix} w_1 & 0 \\ 0 & w_2\end{pmatrix}$ </math>
+a.) We introduce and interaction <math>H_1</math> whose matrix elements, using the above basis vectors, are
+<math>H_1=  $\begin{pmatrix} 0 & v \\ v & 0\end{pmatrix}$ </math>
+where v is real.
+Find the exact values of the energies of the new Hamitonlian, <math>H=H_0 + H_1</math>
-.)
-  Dr. Forest h is "h bar"<br>
-* <math> [- \frac{h^2}{2M}\Delta^2 + V]W(x,y,z)=E W(x,y,z) </math><br>
-In our case, using separation of variables, we will get 3 differential equations for x, y and z. W(x,y,z)=w(x)w(y)w(z)<br>
+b.) Assume that <math>w_1 - w_2 >> |v|</math>.  Use time independent perturbation theory to compute the first and second order corrections to the energy levels of <math>H_0</math> when <math>H_1</math> is treated as a perturbation.
-<math>\frac{d^2 w(x)}{dx^2} - m^2 w(x) = 0</math>(1)<br>
+c.) Let <math>w=w_1=w_2</math> in <math>H_0</math> above.  Assuming the system is initially in the eigenstate
-The same will be for y and z.<br>
+<math>\begin{pmatrix}1 \\ 0\end{pmatrix}</math> of <math>H_0</math>, and the interaction <math>H_1</math> is turned on for a finite time interval <math>T</math>.  Find the probabitlity that the system will be found in the state <math>H_0= \begin{pmatrix} w_1 & 0 \\ 0 & w_2\end{pmatrix}</math> at the end of that time interval.
-Solution of equation (1) is following <br>
-<math>w(x) = A\sin(mx)+B\cos(mx)</math><br>
-<math>w(y) = C\sin(ky)+D\cos(ky)</math><br>
-<math>w(z) = E\sin(qz)+F\cos(qz)</math><br>
-* Applying B. C. at x=y=z=0 wave function should be zero, that means B=D=F=0. We have<br>
-<math>w(x) = A\sin(mx) </math><br>
-<math>w(y) = C\sin(ky) </math><br>
-<math>w(z) = E\sin(qz) </math><br>
-Also, w(a)=0 which gives <math>A\sin(ma)=0, m=\frac{\pi n_x}{a}</math>. For y component  <math>C\sin(kb)=0, k=\frac{\pi n_y}{b}</math> and for z  <math>E\sin(qc)=0, q=\frac{\pi n_z}{c}</math><br>
-A, C and E are normalization constants<br>
-<math>\frac{1}{A^2}=\int\sin^2 (\pi nx/a) dx = \frac{a}{2} </math>, limits are from 0 to a. <br>
-The eigenfunction for each component will be<br>
-<math>w(x) = \sqrt{\frac{2}{a}} \sin(\pi n_x x/a)</math><br>
-<math>w(y) = \sqrt{\frac{2}{b}} \sin(\pi n_y y/b)</math><br>
-<math>w(z) = \sqrt{\frac{2}{c}} \sin(\pi n_z z/c)</math><br>
-The eigenenergies <br>
-<math>E_{n_x} = \frac{\pi^2 h^2 {n_x}^2}{2Ma^2}</math>, <math>E_{n_y} = \frac{\pi^2 h^2 {n_y}^2}{2Mb^2}</math>, <math>E_{n_z} = \frac{\pi^2 h^2 {n_z}^2}{2Mc^2}</math> <br>
-Total energy is sum of these energies.<br>

Difference between revisions of "Quantum Qual Problems"

Latest revision as of 21:13, 17 August 2007

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