4n-4\(⋮\)2n-1
Ta có:2n-1\(⋮\)2n-1
=>2.(2n-1)\(⋮\)2n-1
=>4n-2\(⋮\)2n-1(1)
Theo bài ta có:4n-4\(⋮\)2n-1(2)
Từ (1) và(2) suy ra (4n-2)-(4n-4)\(⋮\)2n-1
=>4n-2-4n+4\(⋮\)2n-1
=>2\(⋮\)2n-1
=>2n-1\(\in\)Ư(2)={1;2}
+2n-1=1=>2n=1+1=>2n=2=>n=2:2=>n=1\(\in\)N
+2n-1=2=>2n=2+1=>2n=3=>n=3:2=>n=1,5\(\in\)\(\varnothing\)
Vậy n=1