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1. using an appropriate set of models, make molecular models of the com…

Question

  1. using an appropriate set of models, make molecular models of the compounds listed below and complete the table.
molecular formulano of bond pairsno. of lone pairshybridization of central atomsmolecular geometrybond angle(s)dipole moment (yes or no)
$\ce{bf_{3}}$trigonal planar$120^{\circ}$
$\ce{sncl_{2}}$
$\ce{ch_{4}}$40tetrahedral$109.5^{\circ}$
$\ce{nh_{3}}$31tetrahedral$109.5^{\circ}$
$\ce{h_{2}o}$22tetrahedral$104.5^{\circ}$
$\ce{pcl_{5}}$
$\ce{sf_{4}}$
$\ce{brf_{3}}$
$\ce{xef_{2}}$
$\ce{sf_{6}}$
$\ce{if_{5}}$
$\ce{xef_{4}}$

Explanation:

Step1: Fill BeCl₂ missing columns

Central Be: 2 bond pairs, 0 lone pairs → sp hybridization, dipole no.

Step2: Fill BF₃ missing columns

Central B: 3 bond pairs, 0 lone pairs → sp² hybridization, dipole no.

Step3: Fill SnCl₂ missing columns

Central Sn: 2 bond pairs, 1 lone pair → sp² hybridization, bent geometry, ~120° bond angle, dipole yes.

Step4: Fill CH₄ missing columns

Central C: 4 bond pairs, 0 lone pairs → sp³ hybridization, dipole no.

Step5: Fill NH₃ missing columns

Central N: 3 bond pairs, 1 lone pair → sp³ hybridization, trigonal pyramidal geometry, ~107° bond angle, dipole yes.

Step6: Fill H₂O missing columns

Central O: 2 bond pairs, 2 lone pairs → sp³ hybridization, bent geometry, dipole yes.

Step7: Fill PCl₅ missing columns

Central P: 5 bond pairs, 0 lone pairs → sp³d hybridization, trigonal bipyramidal geometry, 90°/120° bond angles, dipole no.

Step8: Fill SF₄ missing columns

Central S: 4 bond pairs, 1 lone pair → sp³d hybridization, see-saw geometry, ~102°/173° bond angles, dipole yes.

Step9: Fill BrF₃ missing columns

Central Br: 3 bond pairs, 2 lone pairs → sp³d hybridization, T-shaped geometry, ~86° bond angle, dipole yes.

Step10: Fill XeF₂ missing columns

Central Xe: 2 bond pairs, 3 lone pairs → sp³d hybridization, linear geometry, 180° bond angle, dipole no.

Step11: Fill SF₆ missing columns

Central S: 6 bond pairs, 0 lone pairs → sp³d² hybridization, octahedral geometry, 90° bond angle, dipole no.

Step12: Fill IF₅ missing columns

Central I: 5 bond pairs, 1 lone pair → sp³d² hybridization, square pyramidal geometry, ~82° bond angle, dipole yes.

Step13: Fill XeF₄ missing columns

Central Xe: 4 bond pairs, 2 lone pairs → sp³d² hybridization, square planar geometry, 90° bond angle, dipole no.

Answer:

Molecular formulaNo. of bond pairsNo. of lone pairsHybridization of central atomsMolecular geometryBond angle(s)Dipole moment (yes or no)
BF₃30sp²Trigonal planar120°No
SnCl₂21sp²Bent~120°Yes
CH₄40sp³Tetrahedral109.5°No
NH₃31sp³Trigonal pyramidal~107°Yes
H₂O22sp³Bent104.5°Yes
PCl₅50sp³dTrigonal bipyramidal90°/120°No
SF₄41sp³dSee-saw~102°/173°Yes
BrF₃32sp³dT-shaped~86°Yes
XeF₂23sp³dLinear180°No
SF₆60sp³d²Octahedral90°No
IF₅51sp³d²Square pyramidal~82°Yes
XeF₄42sp³d²Square planar90°No