4
$\begingroup$

How can I evaluate \[ \lim_{t\to 0} \frac{e^{-1/t}}{t}\quad ? \] I tried to use L'Hôpital's rule but it didn't help me. Any hints are welcome. Thanks.

3 Answers 3

4

Hint: Set $x=1/t$. (Also, you need to consider $t \to 0^+$ and $t \to 0^-$ separately.)

10

You are given

$\lim_{t \to 0} \frac{1}{t}\exp\left({-\frac 1 t}\right)$

Since $1/t$ behaves oppositely for $0^+$ or $0^-$, we consider both situations. Then we let $x =\dfrac 1 t $ and get

$\lim_{t \to 0^+} \frac{1}{t}\exp\left({-\frac 1 t}\right)=\lim_{x \to+\infty}xe^{-x}=\lim_{x \to+\infty}\frac x {e^{x}}$

$\lim_{t \to 0^-} \frac{1}{t}\exp\left({-\frac 1 t}\right)=\lim_{x \to -\infty}xe^{-x}$

I guess calculation is now straightforward.

6

Note that as $t \to 0$, $\exp(-1/t)$ tends 'faster' to $0$ than $1/t$ tends to $\infty$. To make this precise, let us proceed as follows.

First note that $\exp(x) \geq 1 + x + \dfrac{x^2}2$ for $x \geq 0$ and $\exp(x) \leq 1 + x + \dfrac{x^2}2$ for $x \leq 0$. For $t \geq 0$, $\dfrac{\exp(-1/t)}{t} = \dfrac1{t \exp(1/t)} \leq \dfrac1{t (1 + 1/t + 1/(2t^2))} = \dfrac1{t + 1 + 1/(2t)} = \dfrac{2t}{2t^2 + 2t + 1}$ Hence, if we let $t \rightarrow 0^+$, we get that $0 \leq \lim_{t \rightarrow 0^+} \dfrac{\exp(-1/t)}{t} \leq \lim_{t \rightarrow 0^+} \dfrac{2t}{2t^2 + 2t + 1} = 0$ Argue similarly, for $t \leq 0$.