Question

What is the limit of `(sin^2x)/(3x^2)` as x approaches `0`?

Answer 1

`lim_(x->0) sin^2(x)/(3x^2) = 1/3`

Explanation:

Start with your favourite proof that `lim_(x->0) (sin(x))/x = 1`

That might start with a geometric illustration that for small `x > 0`

`sin(x) <= x <= tan(x)`

Then divide through by `sin(x)` to get:

`1 <= x / sin(x) <= 1 / cos(x)`

Take reciprocals and reverse the inequality (since `1/x` is monotonically decreasing for `x > 0`) to get:

`cos(x) <= sin(x)/x <= 1`

Then `lim_(x->0+) cos(x) = 1`

So `lim_(x->0+) (sin(x)/x) = 1`

Also `sin(-x) = -sin(x)`, so `sin(-x)/(-x) = sin(x)/x`

Hence `lim_(x->0-) (sin(x)/x) = 1` too.

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Whatever method we use to find `lim_(x->0) sin(x)/x = 1`, it is not too difficult to deduce:

`lim_(x->0) sin^2(x)/(3x^2) = (lim_(x->0) sin(x)/x) * (lim_(x->0) sin(x)/x) * 1/3 = 1/3`