$A$ circular coil of radius $R$ is carrying a current $I_{1}$ in an anticlockwise sense. $A$ long straight wire is carrying a current $I_{2}$ in the negative direction of the $x$-axis. Both are placed in the same plane and the distance between the centre of the coil and the straight wire is $d$. The magnetic field at the centre of the coil will be zero for the value of $d$ equal to:

  • A
    $\frac{\pi}{R}\left(\frac{I_{1}}{I_{2}}\right)$
  • B
    $\frac{\pi}{R}\left(\frac{I_{2}}{I_{1}}\right)$
  • C
    $\frac{R}{\pi}\left(\frac{I_{2}}{I_{1}}\right)$
  • D
    $\frac{R}{\pi}\left(\frac{I_{1}}{I_{2}}\right)$

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