8. 已知幂函数f(x)=(m−1)2xm2−4m+2f(x)={(m-1)^2}{x^{{m^2}-4m+2}}f(x)=(m−1)2xm2−4m+2在(0,+∞)(0,+\infty )(0,+∞)上单调递增,函数g(x)=2x−ag(x)=2^{x}-ag(x)=2x−a,∀x1∈[1\forall x_{1}\in [1∀x1∈[1,5]5]5],∃x2∈[1\exist x_{2}\in [1∃x2∈[1,5]5]5],使得f(x1)⩾g(x2)f(x_{1})\geqslant g(x_{2})f(x1)⩾g(x2)成立,则实数aaa的取值范围是((( )))