Answer to Question #210412 in Abstract Algebra for Maheen Fatima

Let us prove that "SL(n,F)=\\{A\\in GL(n,F):\\det A =1\\}" is a subgroup of "GL(n,F)." If "A,B\\in SL(n,F)," then "\\det A=\\det B =1." It follows that "\\det(AB)=\\det A\\cdot \\det B=1\\cdot 1=1," and hence "AB\\in SL(n,F)." It follows also that "\\det (A^{-1})=\\frac{1}{\\det A}=\\frac{1}{1}=1," and hence "A^{-1}\\in SL(n, F)." We conclude that "SL(n,F)"

is a subgroup of "GL(n,F)."