Exponential Potential Born Approximation: Difference between revisions

Latest revision as of 13:48, 18 January 2014

The potential $V\!$ is spherically symmetric, so that

$f_{\text{Born}}(\theta )=-{\frac {2m}{\hbar ^{2}}}\int _{0}^{\infty }dr'\,V(r'){\frac {\sin(qr')}{qr'}}{r'}^{2}.$

Substituting in the given potential, we obtain

$f_{\text{Born}}(\theta )=-{\frac {2mV_{0}}{\hbar ^{2}q}}\int _{0}^{\infty }dr'\,r'\sin(qr')e^{-r'/a}.$

Integrating by parts, we obtain

${\begin{aligned}f_{\text{Born}}(\theta )&=-{\frac {2mV_{0}}{\hbar ^{2}q}}{\frac {\partial }{\partial q}}\int _{0}^{\infty }dr'\,\cos(qr')e^{-r'/a}\\&=-{\frac {2mV_{0}}{\hbar ^{2}q}}{\frac {\partial }{\partial q}}\Re e\left(\int _{0}^{\infty }dr'\,e^{iqr'}e^{-r'/a}\right)\\&=-{\frac {2mV_{0}}{\hbar ^{2}q}}{\frac {\partial }{\partial q}}\Re e\left[{\frac {e^{(iq-1/a)r'}}{iq-1/a}}\right]_{0}^{\infty }\\&=-{\frac {2mV_{0}}{\hbar ^{2}q}}{\frac {\partial }{\partial q}}\Re e\left[{\frac {1}{1/a+iq}}\right]\\&={\frac {4mV_{0}a^{3}}{\hbar ^{2}}}\left({\frac {1}{1+q^{2}a^{2}}}\right)^{2}.\end{aligned}}$

The differential cross section is therefore

${\frac {d\sigma }{d\theta }}=\left|f_{\text{Born}}(\theta )\right|^{2}={\frac {16m^{2}V_{0}^{2}a^{6}}{\hbar ^{4}}}\left({\frac {1}{1+q^{2}a^{2}}}\right)^{4}.$

Back to Differential Cross Section and the Green's Function Formulation of Scattering

@@ Line 1: / Line 1: @@
-Using the Born approximation, find the differential cross section for the next exponential potential:
+The potential <math> V \!</math> is spherically symmetric, so that
-<math> V(r)= -V_0 e^{-\frac{r}{a}} </math>
+<math> f_{\text{Born}}(\theta)= -\frac{2m}{\hbar^2} \int_0^\infin dr'\,V(r') \frac{\sin(qr')}{qr'} {r'}^2.</math>
-----------
+Substituting in the given potential, we obtain
-If the potential V is spherical symmetric we can use the equation:
+<math> f_{\text{Born}}(\theta) = - \frac{2mV_0}{\hbar^2 q} \int_0^\infin dr'\, r' \sin(qr') e^{-r'/a}. </math>
+Integrating by parts, we obtain
-: <math> f_{born}(\theta) = \frac{-2m}{\hbar^2} \int_0^\infin dr' V(r') \frac{\sin(qr')}{qr'} {r'}^2 </math>
+<math>
+\begin{align}
+f_{\text{Born}}(\theta)
+&= -\frac{2mV_0}{\hbar^2 q}\frac{\partial}{\partial q}\int_0^\infin dr'\,\cos(qr')e^{-r'/a} \\
+&= -\frac{2mV_0}{\hbar^2 q}\frac{\partial}{\partial q}\Re e\left (\int_0^\infin dr'\,e^{iqr'}e^{-r'/a}\right ) \\
+&= -\frac{2mV_0}{\hbar^2 q}\frac{\partial}{\partial q}\Re e\left [\frac{e^{(iq - 1/a)r'}}{iq - 1/a}\right ]_{0}^{\infin} \\
+&= -\frac{2mV_0}{\hbar^2 q}\frac{\partial}{\partial q}\Re e\left [\frac {1}{1/a + iq}\right ] \\
+&= \frac{4mV_0a^3}{\hbar^2}\left (\frac{1}{1+q^2a^2}\right )^2.
+\end{align}</math>
+The differential cross section is therefore
-So,
+<math> \frac{d\sigma}{d\theta}=\left|f_{\text{Born}}(\theta) \right|^2=\frac{16m^2V_0^2a^6}{\hbar^4} \left(\frac{1}{1+q^2a^2}\right)^4.</math>
-: <math> f_{born}(\theta) = \frac{-2mV_0}{\hbar^2 q} \int_0^\infin r' sin(ar') e^{-\frac{r'}{a}} dr' </math>
+Back to [[Differential Cross Section and the Green's Function Formulation of Scattering#Problems|Differential Cross Section and the Green's Function Formulation of Scattering]]

Exponential Potential Born Approximation: Difference between revisions

Latest revision as of 13:48, 18 January 2014

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