Permutation matrix/Cycle/C/Eigenvalues/Fact/Proof

We have

${\displaystyle {}{\begin{aligned}M_{\rho }(v_{\zeta })&=M_{\rho }(\zeta ^{k-1}e_{i_{1}}+\zeta ^{k-2}e_{i_{2}}+\cdots +\zeta e_{i_{k-1}}+e_{i_{k}})\\&=\zeta ^{k-1}M_{\rho }(e_{i_{1}})+\zeta ^{k-2}M_{\rho }(e_{i_{2}})+\cdots +\zeta M_{\rho }(e_{i_{k-1}})+M_{\rho }(e_{i_{k}})\\&=\zeta ^{k-1}e_{i_{2}}+\zeta ^{k-2}e_{i_{3}}+\cdots +\zeta e_{i_{k}}+e_{i_{1}}\\&=e_{i_{1}}+\zeta ^{k-1}e_{i_{2}}+\zeta ^{k-2}e_{i_{3}}+\cdots +\zeta e_{i_{k}}\\&=\zeta (\zeta ^{k-1}e_{i_{1}}+\zeta ^{k-2}e_{i_{2}}+\cdots +\zeta e_{i_{k-1}}+e_{i_{k}})\\&=\zeta v_{\zeta }.\end{aligned}}}$

Since there are ${\displaystyle {}k}$ different ${\displaystyle {}k}$-th roots of unity in ${\displaystyle {}\mathbb {C} }$, these vectors are linearly independent due to fact, and they generate a ${\displaystyle {}k}$-dimensional linear subspace ${\displaystyle {}U}$ of ${\displaystyle {}K^{n}}$. In fact, we have

${\displaystyle {}U=\langle e_{i_{j}},\,j=1,\ldots ,k\rangle \,.}$

Since the vectors ${\displaystyle {}e_{i}}$, ${\displaystyle {}i\neq {i_{j}}}$, are fixed vectors, the ${\displaystyle {}v_{\zeta }}$ together with the ${\displaystyle {}e_{i}}$, ${\displaystyle {}i\neq {i_{j}}}$, form a basis consisting of eigenvectors of ${\displaystyle {}M_{\rho }}$. Hence, ${\displaystyle {}M_{\rho }}$ is diagonalizable.