Sovi.AI - AI Math Tutor

Scan to solve math questions

QUESTION IMAGE

9. draw diagrams to show how each of the covalent compounds below is fo…

Question

  1. draw diagrams to show how each of the covalent compounds below is formed by covalent bonding. hcl fcl of₂ nh₃

Explanation:

For HCl:
Step 1: Determine Valence Electrons

Hydrogen (H) has 1 valence electron, and Chlorine (Cl) has 7 valence electrons.

Step 2: Show Electron Sharing

H needs 1 more electron to fill its outer shell (duet rule), and Cl needs 1 more electron to fill its outer shell (octet rule). They share a pair of electrons. The Lewis structure is: $ \text{H} - \text{Cl} $, with Cl having 3 lone pairs (6 electrons) and H having 2 electrons (shared pair + its own).

For FCl:
Step 1: Determine Valence Electrons

Fluorine (F) has 7 valence electrons, Chlorine (Cl) has 7 valence electrons.

Step 2: Show Electron Sharing

Both F and Cl need 1 electron to complete their octets. They share a pair of electrons. The Lewis structure is: $ \text{F} - \text{Cl} $, with F and Cl each having 3 lone pairs (6 electrons each).

For $ \text{OF}_2 $:
Step 1: Determine Valence Electrons

Oxygen (O) has 6 valence electrons, each Fluorine (F) has 7 valence electrons.

Step 2: Show Electron Sharing

O needs 2 electrons to complete its octet, each F needs 1 electron. O shares one electron pair with each F. The Lewis structure: O is the central atom, bonded to two F atoms ($ \text{F} - \text{O} - \text{F} $). O has 2 lone pairs (4 electrons), and each F has 3 lone pairs (6 electrons).

For $ \text{NH}_3 $:
Step 1: Determine Valence Electrons

Nitrogen (N) has 5 valence electrons, each Hydrogen (H) has 1 valence electron.

Step 2: Show Electron Sharing

N needs 3 electrons to complete its octet, each H needs 1 electron. N shares one electron pair with each of the 3 H atoms. The Lewis structure: $ \text{H} - \text{N} - \text{H} $ (with a third H bonded to N), and N has 1 lone pair (2 electrons).

To draw the diagrams (Lewis structures):

  • For HCl: Draw H connected by a single line to Cl. Cl has 3 pairs of dots (lone pairs) around it.
  • For FCl: Draw F connected by a single line to Cl. Both F and Cl have 3 pairs of dots around them.
  • For $ \text{OF}_2 $: Draw O in the center, connected by single lines to two F atoms. O has two pairs of dots, each F has three pairs of dots.
  • For $ \text{NH}_3 $: Draw N in the center, connected by single lines to three H atoms. N has one pair of dots.

(Note: In Lewis structures, the lines represent shared electron pairs, and the dots represent lone electron pairs.)

Answer:

For HCl:
Step 1: Determine Valence Electrons

Hydrogen (H) has 1 valence electron, and Chlorine (Cl) has 7 valence electrons.

Step 2: Show Electron Sharing

H needs 1 more electron to fill its outer shell (duet rule), and Cl needs 1 more electron to fill its outer shell (octet rule). They share a pair of electrons. The Lewis structure is: $ \text{H} - \text{Cl} $, with Cl having 3 lone pairs (6 electrons) and H having 2 electrons (shared pair + its own).

For FCl:
Step 1: Determine Valence Electrons

Fluorine (F) has 7 valence electrons, Chlorine (Cl) has 7 valence electrons.

Step 2: Show Electron Sharing

Both F and Cl need 1 electron to complete their octets. They share a pair of electrons. The Lewis structure is: $ \text{F} - \text{Cl} $, with F and Cl each having 3 lone pairs (6 electrons each).

For $ \text{OF}_2 $:
Step 1: Determine Valence Electrons

Oxygen (O) has 6 valence electrons, each Fluorine (F) has 7 valence electrons.

Step 2: Show Electron Sharing

O needs 2 electrons to complete its octet, each F needs 1 electron. O shares one electron pair with each F. The Lewis structure: O is the central atom, bonded to two F atoms ($ \text{F} - \text{O} - \text{F} $). O has 2 lone pairs (4 electrons), and each F has 3 lone pairs (6 electrons).

For $ \text{NH}_3 $:
Step 1: Determine Valence Electrons

Nitrogen (N) has 5 valence electrons, each Hydrogen (H) has 1 valence electron.

Step 2: Show Electron Sharing

N needs 3 electrons to complete its octet, each H needs 1 electron. N shares one electron pair with each of the 3 H atoms. The Lewis structure: $ \text{H} - \text{N} - \text{H} $ (with a third H bonded to N), and N has 1 lone pair (2 electrons).

To draw the diagrams (Lewis structures):

  • For HCl: Draw H connected by a single line to Cl. Cl has 3 pairs of dots (lone pairs) around it.
  • For FCl: Draw F connected by a single line to Cl. Both F and Cl have 3 pairs of dots around them.
  • For $ \text{OF}_2 $: Draw O in the center, connected by single lines to two F atoms. O has two pairs of dots, each F has three pairs of dots.
  • For $ \text{NH}_3 $: Draw N in the center, connected by single lines to three H atoms. N has one pair of dots.

(Note: In Lewis structures, the lines represent shared electron pairs, and the dots represent lone electron pairs.)