State the shapes of molecules that contain only bonding electron pairs around the central atom.

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(N/A) The shapes of molecules can be predicted using the $VSEPR$ theory. According to this theory,molecules are classified based on the presence of lone pairs on the central atom. For molecules where the central atom $A$ is surrounded only by bonding electron pairs (with no lone pairs),the shapes are determined by the arrangement of these pairs to minimize repulsion. The following table summarizes these shapes:
| Number of electron pairs | Arrangement of electron pairs | Molecular Geometry | Hybridization | Examples |
| :--- | :--- | :--- | :--- | :--- |
| $2$ | Linear | Linear $(AB_2)$ | $sp$ | $BeCl_2, HgCl_2$ |
| $3$ | Trigonal planar | Trigonal planar $(AB_3)$ | $sp^2$ | $BF_3$ |
| $4$ | Tetrahedral | Tetrahedral $(AB_4)$ | $sp^3$ | $CH_4, NH_4^+$ |

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Similar Questions

Which of the following molecules has no lone pair of electrons on the central atom?

Which of the following pairs are isoelectronic and isostructural: $NO_3^-,$ $CO_3^{2-},$ $ClO_3^-,$ $SO_3$?

Which of the following molecules has trigonal planar geometry?

Match List-$I$ with List-$II$ :
List-$I$List-$II$
$a. NH_3$$i$. Square pyramidal
$b. ClF_3$$ii$. Trigonal bipyramidal
$c. PCl_5$$iii$. Trigonal pyramidal
$d. BrF_5$$iv$. $T$-shape

Choose the correct answer from the options given below :

Which of the following compounds has the smallest bond angle $(X - A - X)$ in each series respectively?
$(A) \ OSF_2 \ \ \ \ \ \ \ \ \ OSCl_2 \ \ \ \ \ \ \ \ \ OSBr_2$
$(B) \ SbCl_3 \ \ \ \ \ \ \ \ \ SbBr_3 \ \ \ \ \ \ \ \ \ SbI_3$
$(C) \ PI_3 \ \ \ \ \ \ \ \ \ \ \ \ AsI_3 \ \ \ \ \ \ \ \ \ \ \ \ SbI_3$

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