What is the maximum value of the function f defined by f(x) = x^2 * e^(2x) for x ≥ 0?

To find the maximum value of the function f(x) = x² e^2x for x ≥ 0, we start by calculating its derivative, f'(x).

Using the product rule, where u = x² and v = e^2x, we have:

• u’ = 2x
• v’ = 2e^2x

Now, applying the product rule:

f'(x) = u'v + uv' = (2x)e2x + (x2)(2e2x)

This simplifies to:

f'(x) = e2x (2x + 2x2) = 2x e2x (x + 1)

The function reaches its critical points when f'(x) = 0. Setting the derivative equal to zero:

2x e2x (x + 1) = 0

This equation gives us:

• x = 0
• x + 1 = 0 (not applicable since x ≥ 0)

Now, we need to evaluate the function at the critical point and the endpoint of the interval. Evaluating at x = 0:

f(0) = 02 e0 = 0

The function f(x) as x → ∞ tends to ∞ since both x² and e^2x grow without bound.

To determine the maximum, we observe that while f(0) = 0, as x increases positively, f(x) increases indefinitely. Therefore, there is no finite maximum value as x approaches infinity.

In conclusion, the function f(x) = x² e^2x does not have a maximum finite value in the interval [0, ∞), but it tends to infinity as x increases.