Which of the following represents the correct order of ionic radius?

  • A
    $Te^{2-} > Br^{-} > K^{+} > Cl^{-}$
  • B
    $Te^{2-} > Br^{-} > Cl^{-} > K^{+}$
  • C
    $Br^{-} > Te^{2-} > Cl^{-} > K^{+}$
  • D
    $K^{+} > Te^{2-} > Br^{-} > Cl^{-}$

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Between $Al$ and $Al^{3+}$,which has a smaller radius and why?

The ions $S^{2-}, Cl^{-}, K^{+}, Ca^{2+}$ are isoelectronic. Their ionic radii show

The correct order of ionic size of $N^{3-}$,$Na^{+}$,$F^{-}$,$Mg^{2+}$,and $O^{2-}$ is:

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Which is the correct increasing order of atomic radii of $Na, K, Mg, Rb$?

Assertion $(A)$: $Mg^{2+}$ and $Al^{3+}$ are isoelectronic but the magnitude of the ionic radius of $Al^{3+}$ is less than that of $Mg^{2+}$.
Reason $(R)$: The effective nuclear charge on the outermost electrons in $Al^{3+}$ is greater than that in $Mg^{2+}$.
The correct option among the following is:

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