If a-0 and z-1-i2a-i- has magnitude -25 - then z is equal to -

Z=(1+i)^2a i On rationalising the denominator, we get z=2ai 2a^2+1 ⇒ |z|=2√(a^2+1)=√(25) ⇒ 20=2(a^2+1) ⇒ nbsp;a^2+1=10 ⇒ a=3 (∵ a0) ∴ z=2(3)i 23^2+1 z= 1 ...

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Byju's Answer

Standard XIII

Mathematics

Conjugate of a Complex Number

If a>0 and z=...

Question

If $a > 0$ and $z = \frac{(1 + i)^{2}}{a - i}$ , has magnitude $\sqrt{\frac{2}{5}}$ , then $¯ ¯ ¯ z$ is equal to :

- \frac{1}{5} - \frac{3}{5} i

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- \frac{1}{5} + \frac{3}{5} i

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- \frac{3}{5} - \frac{1}{5} i

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\frac{1}{5} - \frac{3}{5} i

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Solution

The correct option is A $- \frac{1}{5} - \frac{3}{5} i$
$z = \frac{(1 + i)^{2}}{a - i}$
On rationalising the denominator, we get
$z = \frac{2 a i - 2}{a^{2} + 1}$
$\Rightarrow | z | = \frac{2}{\sqrt{a^{2} + 1}} = \sqrt{\frac{2}{5}} \Rightarrow 20 = 2 (a^{2} + 1) \Rightarrow a^{2} + 1 = 10 \Rightarrow a = 3 (∵ a > 0)$

$∴ z = \frac{2 (3) i - 2}{3^{2} + 1}$
$z = \frac{- 1 + 3 i}{5} \Rightarrow ¯ ¯ ¯ z = \frac{- 1 - 3 i}{5}$

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If a>0 and z=(1+i)2a−i, has magnitude √25 , then ¯¯¯z is equal to :

The correct option is A −15−35iz=(1+i)2a−i On rationalising the denominator, we get z=2ai−2a2+1 ⇒|z|=2√a2+1=√25⇒20=2(a2+1)⇒a2+1=10⇒a=3 (∵a>0) ∴z=2(3)i−232+1 z=−1+3i5⇒¯¯¯z=−1−3i5

If $a > 0$ and $z = \frac{(1 + i)^{2}}{a - i}$ , has magnitude $\sqrt{\frac{2}{5}}$ , then $¯ ¯ ¯ z$ is equal to :