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which of the following bonds would be the most polar based on the given…

Question

which of the following bonds would be the most polar based on the given en values?
n-h
o-h
c-o
c-h
what is the lewis diagram for sodium chloride?
na :cl:
na+ :cl:-
na+ cl-
na+ :cl:
b
a
c
d

Explanation:

First Question (Most Polar Bond)

Step1: Recall Electronegativity Difference

Polarity of a bond depends on the electronegativity (EN) difference between atoms. Larger EN difference → more polar.

Step2: Analyze Each Bond

  • N - H: EN of N ≈ 3.0, H ≈ 2.1 → Difference = \( 3.0 - 2.1 = 0.9 \)
  • O - H: EN of O ≈ 3.5, H ≈ 2.1 → Difference = \( 3.5 - 2.1 = 1.4 \)
  • C - O: EN of C ≈ 2.5, O ≈ 3.5 → Difference = \( 3.5 - 2.5 = 1.0 \)
  • C - H: EN of C ≈ 2.5, H ≈ 2.1 → Difference = \( 2.5 - 2.1 = 0.4 \)

Step3: Compare Differences

The largest difference is for O - H (1.4), so it's the most polar.

Sodium chloride (NaCl) is an ionic compound. Na loses an electron to form \( \text{Na}^+ \), Cl gains an electron to form \( \text{Cl}^- \) (with 8 valence electrons, shown as \( [: \ddot{\text{Cl}} :]^- \)). The Lewis diagram should show the cation \( \text{Na}^+ \) and anion \( [: \ddot{\text{Cl}} :]^- \) with proper charge notation. Option d has \( [\text{Na}^+] [: \ddot{\text{Cl}} :]^- \) (correct charge on Na⁺ and Cl⁻ with Cl's octet). Option b has incorrect Na notation (should be \( \text{Na}^+ \), not \( \text{Na}^* \)), option a has Na (not ion), option c has [Cl]⁻ (incorrect Lewis structure for Cl⁻).

Answer:

O-H

Second Question (Lewis Diagram for NaCl)