Proof of Theorem 1.1.

Clearly $A\ne 0.$ Suppose that $\theta $ is a root of $f(x)$ and $K={\mathbb {Q}}(\theta )$ . From (1.2),

$$ \begin{align*}\Delta_f=(-1)^{{n(n-1)}/{2}}A^{n-1}[n^n+(-1)^{n+m}B^n(n-m)^{n-m}m^mA].\end{align*} $$

First suppose that the polynomial $f(x)$ is monogenic. Then $\mathrm {Ind}_K(\theta )=1.$ Let p be a prime dividing $\Delta _f$ . The following cases arise.

Case 1: $p\mid A$ . Then $f(x)\equiv x^n\,\mod p$ and $M(x)=A(Bx+1)^m/p$ . As $n\ge 3$ , by Dedekind’s criterion, we see that $\overline{x}$ should not divide $\overline {M}(x).$ This implies that $p^2\nmid A.$ Thus, A is square-free. Suppose that $p^2$ divides $(n^n+(-1)^{n+m}B^n(n-m)^{n-m}m^mA).$ Then the hypothesis $p\mid A$ implies that $p\mid n.$ Since $n\ge 3$ and A is square-free, we have $p\mid B^n(n-m)^{n-m}m^m,$ that is, $p\mid m(n-m)B,$ which is not true because $\gcd (n,mB)= 1.$ It follows that $p^2$ cannot divide $(n^n+(-1)^{n+m}B^n(n-m)^{n-m}m^mA)$ and so $ (n^n+(-1)^{n+m}B^n(n-m)^{n-m}m^mA)$ is square-free.

Case 2: $p\nmid A$ . Then p will divide $(n^n+(-1)^{n+m}B^n(n-m)^{n-m}m^mA).$ Keeping in mind the hypothesis $\gcd (n,mB)=1,$ it is easy to see that $p\nmid n$ and so $p\nmid Bm(n-m)$ . Let $\alpha $ be a repeated root of $\overline{f}(x)=x^n+\overline{A}(\overline{B}x+1)^m$ in the algebraic closure of ${\mathbb {Z}}/p{\mathbb {Z}}.$ Then

$$ \begin{align*} \alpha^n+A(B\alpha+1)^m\equiv 0\,\mod p \end{align*} $$

and

$$ \begin{align*} n\alpha^{n-1}+mAB(B\alpha+1)^{m-1}\equiv 0\,\mod p. \end{align*} $$

So $n\alpha ^{n-1}\equiv -mAB(B\alpha +1)^{m-1}\,\mod p.$ By substitution,

$$ \begin{align*}-\alpha mAB(B\alpha+1)^{m-1}+n A(B\alpha+1)^{m}\equiv0\,\mod p,\end{align*} $$

that is,

$$ \begin{align*}(B\alpha+1)^{m-1}(\alpha AB(n-m)+nA)\equiv 0\,\mod p.\end{align*} $$

If $B\alpha +1\equiv 0\,\mod p,$ then $\alpha \equiv -{1}/{B}\,\mod p,$ which yields the contradiction ${(-1)^n}/{\overline {B}^n}=\overline {f}({-1}//{\overline {B}})=\overline {f}(\overline {\alpha })=0.$ Thus, $\alpha AB(n-m)+nA\equiv 0\,\mod p,$ so that

(3.1) $$ \begin{align} \alpha\equiv -\frac{nA}{AB(n-m)}\,\mod p \end{align} $$

is the unique repeated root of $\overline {f}(x)$ in ${\mathbb {Z}}/p{\mathbb {Z}}$ and it is easy to show that $\alpha $ has multiplicity $2.$ So, assuming that $\alpha $ is a positive integer satisfying (3.1), we can write

$$ \begin{align*} f(x) & =(x-\alpha+\alpha)^n+A(B(x-\alpha+\alpha)+1)^m,\\ & =\displaystyle\sum_{k=0}^{n}\binom{n}{k}\alpha^{n-k}(x-\alpha)^k+A\bigg(\displaystyle\sum_{k=0}^{m}\binom{m}{k}(B\alpha+1)^{m-k}B^k(x-\alpha)^k\bigg),\\ & =(x-\alpha)^2h(x)+f'(\alpha)(x-\alpha)+f(\alpha), \end{align*} $$

where $f'(x)$ is the derivative of $f(x)$ and

$$ \begin{align*}h(x)=\displaystyle\sum_{k=2}^{n}\binom{n}{k}\alpha^{n-k}(x-\alpha)^{k-2}+A\bigg(\displaystyle\sum_{k=2}^{m}\binom{m}{k}(B\alpha+1)^{m-k}B^k(x-\alpha)^{k-2}\bigg)\end{align*} $$

is in ${\mathbb {Z}}[x].$ Then $\overline {f}(x)=(x-\overline {\alpha })^2\overline {h}(x),$ where $\overline {h}(x)\in {\mathbb {Z}}[x]$ is separable. Let $\prod _{i=1}^{t} \overline{h}_i(x)$ be the factorisation of $\overline {h}(x)$ into a product of distinct irreducible polynomials $\overline {h}_i(x)\in {\mathbb {Z}}/p{\mathbb {Z}}[x]$ with each $h_i(x)\in {\mathbb {Z}}[x]$ monic. Then we can write

$$ \begin{align*} f(x)=(x-\alpha)^2\bigg(\displaystyle\prod_{i=1}^{t}h_i(x)+p g(x)\bigg)+f'(\alpha)(x-\alpha)+f(\alpha), \end{align*} $$

for some polynomial $g(x)\in {\mathbb {Z}}[x]$ . This implies that

$$ \begin{align*}M(x)=\frac{1}{p}[p (x-\alpha)^2g(x)+(x-\alpha)f'(\alpha)+f(\alpha)].\end{align*} $$

In view of Dedekind’s criterion and the hypothesis that $f(x)$ is monogenic, we see that $f(\alpha )\not \equiv 0\,\mod p^2.$ Equivalently,

$$ \begin{align*}(n^n+(-1)^{n+m}(n-m)^{n-m}m^mB^nA)\not\equiv 0\,\mod p^2.\end{align*} $$

Hence, $(n^n+(-1)^{n+m}(n-m)^{n-m}m^mB^nA)$ is square-free.

Conversely, suppose A and $(n^n+(-1)^{n+m}(n-m)^{n-m}m^mB^nA)$ are square-free. If $A=\pm 1,$ then using (1.1), we see that $\mathrm {Ind}_K(\theta )=1,$ that is, $f(x)$ is monogenic. If p be a prime divisor of $A,$ then $f(x)$ is an Eisenstein polynomial with respect to the prime p. Therefore, by Lemma 2.4, $p\nmid \mathrm {Ind}_K(\theta ).$ Hence, by (1.1), $f(x)$ is monogenic. This completes the proof of the theorem.

Proof of Corollary 1.3.

It is easy to verify that $f(x)$ satisfies Eisenstein’s criterion with respect to the prime $p.$ So $f(x)$ is an irreducible polynomial. Hence, the result follows from Theorem 1.1.