If A=B C B^{-1} then right-multiply by B to get A*B = B * C * B^{-1} * B which is A*B = B * C
syms x y z iota
A=[0 x+iota/2*(y+z); x-iota/2*(y+z) 0]
C=[x y; z -x]
B = sym('b',[2 2])
sol = solve(A*B == B*C, B)
sol.b1_1, sol.b1_2, sol.b2_1, sol.b2_2
You will find that the result is all 0
