题(2)当\(x\in (1,+\infty)\)时,求证:\(\dfrac{\text{e}(x-1)}{\text{e}^x}<\ln x<x^2-x\).
\(\ding{192}\)函数\(y=\dfrac{\ln x}{x}\)在\(x=1\)处切线放缩\(\Rightarrow \dfrac{\ln x}{x}\leqslant x-1\)
\(\Rightarrow \ln x<x^2-x\)(其中\(x>1\))
\(\ding{193}\)函数\(y=x \ln x\)在\(x=1\)处切线放缩\(\Rightarrow x\ln x\geqslant x-1\)
\(\Rightarrow \ln x>\dfrac{x-1}{x}>\dfrac{\text{e}(x-1)}{\text{e}^x}\)(其中\(x>1\))
其中函数\(y=\text{e}^x\)在\(x=1\)处切线放缩\(\Rightarrow \text{e}^x\geqslant\text{e}x\Rightarrow\) 当\(x>1\)时\(\text{e}^x>\text{e}x\)