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 is a heterogeneous RNA formed during Eukaryotic transcription:
How many introns and exons respectively are present in the hnRNA?