MCQEasyJEE 2023Coulomb's Law & Superposition Principle

JEE Physics 2023 Question with Solution

A 10μC10 \, \mu \text{C} charge is divided into two parts and placed at 1cm1 \, \text{cm} distance so that the repulsive force between them is maximum. The charges of the two parts are:

  • A

    7μC7 \, \mu \text{C}, 3μC3 \, \mu \text{C}

  • B

    8μC8 \, \mu \text{C}, 2μC2 \, \mu \text{C}

  • C

    9μC9 \, \mu \text{C}, 1μC1 \, \mu \text{C}

  • D

    5μC5 \, \mu \text{C}, 5μC5 \, \mu \text{C}

Answer

Correct answer:D

Step-by-step solution

Standard Method

Given: Total charge is q=10μCq = 10 \, \mu \text{C} and the two parts are kept at a fixed distance r=1cmr = 1 \, \text{cm}.

Find: The division of charge for which the repulsive force is maximum.

Using Coulomb's law,

F=kx(qx)r2F = \frac{k \, x \, (q-x)}{r^2}

where one part is xx and the other is (qx)(q-x).

To maximize force, differentiate with respect to xx and set it equal to zero:

dFdx=ddx(kx(qx)r2)=kr2(q2x)=0\frac{dF}{dx} = \frac{d}{dx}\left(\frac{k \, x \, (q-x)}{r^2}\right) = \frac{k}{r^2}(q-2x) = 0

So,

q2x=0q - 2x = 0

Hence,

x=q2=10μC2=5μCx = \frac{q}{2} = \frac{10 \, \mu \text{C}}{2} = 5 \, \mu \text{C}

The other part is,

qx=10μC5μC=5μCq - x = 10 \, \mu \text{C} - 5 \, \mu \text{C} = 5 \, \mu \text{C}

Therefore, the charges of the two parts are 5μC5 \, \mu \text{C} and 5μC5 \, \mu \text{C}. The correct option is D. The solution mentions option C, but the worked solution clearly gives 5μC5 \, \mu \text{C} and 5μC5 \, \mu \text{C}, which matches option D.

Symmetry Insight

Given: Total charge is fixed and distance is fixed.

Find: When the product of the two charge parts is maximum.

Since

Fx(qx)F \propto x(q-x)

for fixed qq and fixed rr, the force is maximum when the product x(qx)x(q-x) is maximum. For a fixed sum, the product is maximum when the two numbers are equal.

Thus,

x=qx=q2=5μCx = q-x = \frac{q}{2} = 5 \, \mu \text{C}

Therefore, the two charges are 5μC5 \, \mu \text{C} and 5μC5 \, \mu \text{C}. The correct option is D.

Common mistakes

  • Assuming that a larger difference between the two parts gives a larger force is incorrect, because for fixed total charge the force depends on the product x(qx)x(q-x), not on the difference. Maximize the product instead.

  • Using the incorrect option label from the page without checking the working is wrong here. The worked solution gives 5μC5 \, \mu \text{C} and 5μC5 \, \mu \text{C}, so the defensible answer is option D, not the listed label in the solution.

  • Forgetting that the distance rr is fixed can lead to unnecessary manipulation of Coulomb's law. Since kk and r2r^2 are constants, only x(qx)x(q-x) needs to be maximized.

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