The charge on the plates of the capacitor in a steady-state will be:

1. \(3~\mu\text{C}\)
2. \(9~\mu\text{C}\)
3. \(27~\mu\text{C}\)
4. \(36~\mu\text{C}\)

Subtopic:  Capacitance |
Level 3: 35%-60%
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Two identical parallel plate capacitors are placed in series and connected to a constant voltage source of \(V_0\) volt. If one of the capacitors is completely immersed in a liquid with dielectric constant \(K\), the potential difference between the plates of the other capacitor will change to:

1. \(\frac{K +   1}{K} V_{0}\)

2. \(\frac{K}{K +   1} V_{0}\)

3. \(\frac{K +   1}{2 K} V_{0}\)

4. \(\frac{2 K}{K +   1} V_{0}\)

Subtopic:  Dielectrics in Capacitors |
 55%
Level 3: 35%-60%
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The equivalent capacitance across \(A\) and \(B\) in the given figure is:

       

1. \( \dfrac{3}{2}C\) 2. \({C}\)
3. \( \dfrac{2}{3}{C}\) 4. \( \dfrac{5}{3}C\)
Subtopic:  Combination of Capacitors |
 79%
Level 2: 60%+
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Two hollow conducting spheres of radii \(R_1\) and \(R_2\) \(\left ( R_1\gg R_2 \right )\) are concentric and have equal charges. The potential would be:
1. dependent on the material property of the sphere
2. more on the bigger sphere
3. more on the smaller sphere
4. equal on both the spheres
Subtopic:  Electric Potential |
 70%
Level 2: 60%+
PMT - 2022
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A capacitor of capacitance \(C=900~\text{pF}\) is charged fully by \(100~\text{V}\) battery \(B\) as shown in Figure \((a).\) Then it is disconnected from the battery and connected to another uncharged capacitor of capacitance \(C=900~\text{pF}\) as shown in Figure \((b).\) The electrostatic energy stored by the system \((b)\) is:

1. \(1.5\times 10^{-6}~\text{J}\)
2. \(4.5\times 10^{-6}~\text{J}\)
3. \(3.25\times 10^{-6}~\text{J}\)
4. \(2.25\times 10^{-6}~\text{J}\)
Subtopic:  Energy stored in Capacitor |
 59%
Level 3: 35%-60%
NEET - 2022
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The distance between the two plates of a parallel plate capacitor is doubled, and the area of each plate is halved. If \(C\) is its initial capacitance, its final capacitance is equal to:
1. \(2C\) 2. \(\dfrac{C}{2}\)
3. \(4C\) 4. \(\dfrac{C}{4}\)
Subtopic:  Capacitance |
 81%
Level 1: 80%+
NEET - 2022
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The effective capacitances of two capacitors are \(3~\mu \text{F}\) and \(16~\mu \text{F}\), when they are connected in series and parallel respectively. The capacitance of two capacitors are:
1. \(10 ~\mu \text{F}, ~6~\mu \text{F} \)
2. \(8 ~\mu \text{F}, ~8~\mu \text{F} \)
3. \(12~\mu \text{F},~ 4~\mu \text{F} \)
4. \(1.2~\mu \text{F},~1.8~\mu \text{F} \)
Subtopic:  Combination of Capacitors |
 80%
Level 1: 80%+
NEET - 2022
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Six charges \(+q,\) \(-q,\) \(+q,\) \(-q,\) \(+q\) and \(-q\) are fixed at the corners of a hexagon of side \(d\) as shown in the figure. The work done in bringing a charge \(q_0\) to the centre of the hexagon from infinity is: (\(\varepsilon_0\text-\)permittivity of free space)
1. zero 2. \(\dfrac{-q^2}{4\pi\varepsilon_0d}\)
3. \(\dfrac{-q^2}{4\pi\varepsilon_0d}\Big(3-\dfrac{1}{\sqrt2}\Big)\) 4. \(\dfrac{-q^2}{4\pi\varepsilon_0d}\Big(6-\dfrac{1}{\sqrt2}\Big)\)
Subtopic:  Electric Potential Energy |
 85%
Level 1: 80%+
NEET - 2022
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The minimum number of capacitors each of \(8\) \(\mu\)F and \(250\) V used to make a composite capacitor of \(16\) \(\mu\)F and \(1000\) V are:
1. \(8\)
2. \(32\)
3. \(16\)
4. \(24\)

Subtopic:  Combination of Capacitors |
 65%
Level 2: 60%+
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A \(12~\text{pF}\) capacitor is connected to a \(50~\text V\) battery. How much electrostatic energy is stored in the capacitor?
1. \(3.1\times10^{-8}~\text J\)
2. \(2.9\times10^{-8}~\text J\)
3. \(3.3\times10^{-8}~\text J\)
4. \(1.5\times10^{-8}~\text J\)

 
Subtopic:  Energy stored in Capacitor |
 85%
Level 1: 80%+
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