Answer:
The distance of separation is

Step-by-step explanation:
The mass of the each ball is

The negative charge on each ball is

Now we are told that the lower ball is restrained from moving this implies that the net force acting on it is zero
Hence the gravitational force acting on the lower ball is equivalent to the electrostatic force i.e

=>

here k the the coulomb's constant with a value

So
![0.01 * 9.8 = ( 9*10^9 *[1*10^(-6) * 1*10^(-6)])/(d)](https://img.qammunity.org/2021/formulas/physics/college/7imldb1pmmak8062045pqpfqipubsfqja0.png)
