An electric dipole is placed on the $x$-axis as shown in the figure. Consider a spherical closed surface around it. Then,

  • A
    electric potential at every point on the surface is zero
  • B
    The work done in bringing a test charge from point $B$ to $D$ is non-zero
  • C
    The work done in bringing a test charge from point $A$ to $C$ is non-zero
  • D
    If electric field at point $A$ is zero,then electric field at point $B$ will be $\frac{1}{2}\overrightarrow{E}$

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Obtain the equation for the electric field produced by an electric dipole at a point on its equatorial plane.

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An electric dipole of dipole moment $P$ is placed parallel to a uniform electric field of intensity $E$. On rotating it through an angle of $90^\circ$ from this position,the amount of work done is . . . . . . .

What is an electric dipole? Write its $SI$ unit.

An electrical dipole coincides on the $z$-axis and its midpoint is at the origin of the coordinate system. The electric field at an axial point at a distance $z$ from the origin is $\vec{E}(z)$ and the electric field at an equatorial point at a distance $y$ from the origin is $\vec{E}(y)$. Here $z = y \gg a$,so $\left| \frac{\vec{E}(z)}{\vec{E}(y)} \right| = . . . . . . . .$.

For a short dipole placed at origin $O$,the dipole moment $P$ is along the $x$-axis,as shown in the figure. If the electric potential and electric field at point $A$ (at distance $r$ on the $x$-axis) are $V_0$ and $E_0$,respectively,then the correct combination of the electric potential and electric field,respectively,at point $B$ (at distance $2r$ on the $y$-axis) is given by

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