Question 1

Expand:

for ;

Question 2

Expand f(z) into partial fractions:

$\frac1{z(z-2)} = \frac12 \left(\frac1{z-2} - \frac1z\right)$

Recall that for |z| < 1, we have the power series

$\displaystyle \frac1{1-z} = \sum_(n=0)^\infty z^n$

Then for |z| > 2, or |1/(z/2)| = |2/z| < 1, we have

$\displaystyle \frac1{z-2} = \frac1z \frac1{1 - \frac2z} = \frac1z \sum_(n=0)^\infty \left(\frac 2z\right)^n = \sum_(n=0)^\infty (2^n)/(z^(n+1))$

So the series expansion of f(z) for |z| > 2 is

$\displaystyle f(z) = \frac12 \left(\sum_(n=0)^\infty (2^n)/(z^(n+1)) - \frac1z\right)$

$\displaystyle f(z) = \frac12 \sum_(n=1)^\infty (2^n)/(z^(n+1))$

$\displaystyle f(z) = \sum_(n=1)^\infty (2^(n-1))/(z^(n+1))$

$\displaystyle \boxed{f(z) = \frac14 \sum_(n=2)^\infty (2^n)/(z^n) = \frac1{z^2} + \frac2{z^3} + \frac4{z^4} + \cdots}$

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