Electric potential due to a point charge at a distance \( r \) is:
\[ V = \frac{1}{4\pi\varepsilon_0} \cdot \frac{q}{r} \]
The total potential at the point is the sum of potentials from both charges:
\[ V_{\text{total}} = \frac{1}{4\pi\varepsilon_0} \left( \frac{q_1}{r_1} + \frac{q_2}{r_2} \right) = 0 \]
Substitute values:
\[ \frac{1}{4\pi\varepsilon_0} \left( \frac{2 \times 10^{-9}}{2} + \frac{q_2}{8} \right) = 0 \] \[ \Rightarrow 1 \times 10^{-9} + \frac{q_2}{8} = 0 \Rightarrow \frac{q_2}{8} = -1 \times 10^{-9} \Rightarrow q_2 = -8 \times 10^{-9} \, \text{C} \]
The required charge is: \( q_2 = -8 \, \text{nC} \) placed at \( (0, 0, -6) \, \text{m} \)
Given below are two statements: one is labelled as Assertion (A) and the other is labelled as Reason (R).
Assertion (A): Time period of a simple pendulum is longer at the top of a mountain than that at the base of the mountain.
Reason (R): Time period of a simple pendulum decreases with increasing value of acceleration due to gravity and vice-versa. In the light of the above statements, choose the most appropriate answer from the options given below:
Arrange the following in the ascending order of wavelength (\( \lambda \)):
(A) Microwaves (\( \lambda_1 \))
(B) Ultraviolet rays (\( \lambda_2 \))
(C) Infrared rays (\( \lambda_3 \))
(D) X-rays (\( \lambda_4 \))
Choose the most appropriate answer from the options given below:

“One of these days you’re going to talk yourself into a load of trouble,” her father said aggressively. What do you learn about Sophie’s father from these lines? (Going Places)