Question

What is the limit of `(3+h)^-1 -3^(-1/h)` as h approaches 0?

Answer 1

`lim_(h to 0^-) (3+h)^-1 -3^(-1/h) = -oo`

`lim_(h to 0^+) (3+h)^-1 -3^(-1/h) = 1/3`

so the limit DNE

Explanation:

`lim_(h to 0) (3+h)^-1 -3^(-1/h)`

`= lim_(h to 0) color(blue)(1/(3+h)) - color(red)(1/3^(1/h))`

the limit of the sum is the sum of the limits

`= lim_(h to 0) color(blue)(1/(3+h)) -lim_(h to 0) color(red)(1/3^(1/h))`

`= 1/3 -lim_(h to 0) color(red)(1/3^(1/h))`

the blue term clearly tends to `1/3` for all `0 < abs h " << " 1`, so we are left to consider the red term

`L =- lim_(h to 0) 3^(-1/h)`

`L =- 3^(lim_(h to 0) -1/h)` as the exponential function is continuous

the sign of the exponent will be different coming at this from either side

`- 3^(lim_(h to 0^-) -1/h) = - 3^oo = -oo`

`- 3^(lim_(h to 0^+) -1/h) = - 3^(-oo) = 0`