The electric force and potential due to an electric dipole

The potential being zero at a point is irrelevant. What really matters is the potential difference between two points, that is, suppose you have two points A and B separated by a distance of $Delta r$, and the potential of B is greater than A by $ Delta V$ volts ( say), and both are separated by a distance of $Delta r$. Then,

$$ vec{E} approx - frac{ Delta V}{Delta r} vec{r}$$

where $r$ is the unit vector pointing from A to B, now observe that the rise over run slope of the voltage difference is what causes the electric field.

To illustrate this idea further, suppose whole space had a voltage of a $10000000V$, then there still would be no electric field in this space because we need a 'potential' difference for electric field.

Now, suppose you have a space where this is a very large potential and a small region of space with low potential, if you have a 'positive charge' then this charge would be sucked into the region of low potential, while the electrons would be pushed away into infinity. Now, for equilibrium condition (for + charge), we just need to find the point where the 'rise over run slope' or in a calculus way, where the derivative is zero.

I.e

$$ 0 = nabla U(x,y,z)$$

Or, in a single variable case,

$$ 0 = frac{dU(x)}{dx}$$

This derivative would be a function of 'x', finding the value of 'x' for where the function is zero, we get the equilibrium point.

For example,

$$ U(x) = 3x^2 -x +C$$

$$ frac{dU}{dx} = 6x - 1$$ (notice here that derivative was independent of C, the constant, another way to say it only depends on potential difference)

Now, institute the condition that derivative must be zero

$$ 0 = 6x -1$$

$$ x= frac16$$

So, for a positive charge, $ x =frac{1}{6}$$ is where it would be pushed towards for the system to acquire least energy state. However a negative charge particle, the story is opposite, it would be pushed away from this point because the force on a negative particle is opposite to that of positive one.