Prove that if $n$ and $m$ are coprime then $2^n-1$ and $2^m-1$ respectively are coprime too

Question

How to prove that if $n$ and $m$ are coprime then $2^n-1$ and $2^m-1$ are coprime too? I tried with Bezout's identity without results.

Thanks

Welcome to Math SE. Check out Proving that $\gcd(2^m - 1, 2^n - 1) = 2^{\gcd(m,n )} - 1$. — John Omielan, Nov 08 '20 at 04:54

score 0 · Answer 1 · answered Nov 08 '20 at 04:08

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Show that $\gcd(2^n-1, 2^m-1) = 2^{\gcd(m, n)} - 1 = 2^1-1= 1$.

answered Nov 08 '20 at 04:08

1 Answers1