1 Answer

Harish Gokavarapu · Answer 1 · 2020-08-16T14:01:37+0000

I assume the equation is

2z=|z|+2i

then let
z=x+iy .

2x+2iy=√(x^2+y^2)+2i

2x+2i(y-1)=√(x^2+y^2)

The right side is real-valued and positive, and only on the left side do we have an imaginary term, which tells us

$2(y-1)=0\implies y=1$

Then

2x=√(x^2+1)

4x^2=x^2+1

3x^2=1

$x=\pm\frac1{\sqrt3}$

but again we omit the negative solution, so that

$\boxed{z=\frac1{\sqrt3}+i}$

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