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Chemical Bonding and Molecular Structure MCQs with Answers – Part 4 (Class 11 Chemistry)

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301. VSEPR theory predicts molecular shape mainly by considering
ⓐ. central valence-shell pair repulsions
ⓑ. only the atomic mass of the central atom
ⓒ. the mass of one mole of the compound only
ⓓ. lattice enthalpy of gaseous ions
302. In VSEPR theory, the repulsion order among electron pairs is generally
ⓐ. bond pair-bond pair \(\gt \) lone pair-bond pair \(\gt \) lone pair-lone pair
ⓑ. lone pair-bond pair \(\gt \) bond pair-bond pair \(\gt \) lone pair-lone pair
ⓒ. lone pair-lone pair \(\gt \) lone pair-bond pair \(\gt \) bond pair-bond pair
ⓓ. all electron-pair repulsions are always equal
303. In VSEPR theory, a double bond around the central atom is counted as
ⓐ. two separate electron domains
ⓑ. four electron domains
ⓒ. one electron domain
ⓓ. no electron domain
304. The central carbon atom in \(\mathrm{CO_2}\) has two electron domains and no lone pair. The molecular shape and bond angle are
ⓐ. bent, \(104.5^\circ\)
ⓑ. linear, \(180^\circ\)
ⓒ. trigonal planar, \(120^\circ\)
ⓓ. tetrahedral, \(109.5^\circ\)
305. For VSEPR type \(\mathrm{AX_3}\) with no lone pair on the central atom, the ideal shape is
ⓐ. linear
ⓑ. trigonal pyramidal
ⓒ. trigonal planar
ⓓ. tetrahedral
306. Use the table below to identify the VSEPR description that needs correction.
MoleculeElectron domains around central atomMolecular shape
P. \(\mathrm{CO_2}\)\(2\)linear
Q. \(\mathrm{BF_3}\)\(3\)trigonal planar
R. \(\mathrm{CH_4}\)\(4\)tetrahedral
S. \(\mathrm{NH_3}\)\(4\)trigonal planar
The row that needs correction is
ⓐ. S
ⓑ. P
ⓒ. Q
ⓓ. R
307. In \(\mathrm{CH_4}\), the electron-pair geometry and molecular shape are both tetrahedral because the central carbon has
ⓐ. two bond pairs and two lone pairs
ⓑ. four bond pairs and no lone pair
ⓒ. three bond pairs and one lone pair
ⓓ. four lone pairs and no bond pair
308. The shape of \(\mathrm{NH_3}\) is trigonal pyramidal rather than tetrahedral because
ⓐ. nitrogen has only two electron domains
ⓑ. all four electron domains are bond pairs
ⓒ. hydrogen forms double bonds with nitrogen
ⓓ. one nitrogen electron domain is a lone pair
309. Water has a bent shape because the oxygen atom has
ⓐ. four bond pairs and no lone pair
ⓑ. two bond pairs and two lone pairs
ⓒ. three bond pairs and one lone pair
ⓓ. two lone pairs and no bond pair
310. The correct decreasing order of bond angle is
ⓐ. \(\mathrm{H_2O}\gt \mathrm{NH_3}\gt \mathrm{CH_4}\)
ⓑ. \(\mathrm{NH_3}\gt \mathrm{CH_4}\gt \mathrm{H_2O}\)
ⓒ. \(\mathrm{CH_4}\gt \mathrm{NH_3}\gt \mathrm{H_2O}\)
ⓓ. \(\mathrm{CH_4}=\mathrm{NH_3}=\mathrm{H_2O}\)
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