QUESTION IMAGE
Question
question 2
1 pts
what is the correct order of increasing electronegativity in the following group of elements?
o c < n < o
o n < c < o
o c < o < n
o o < n < c
question 3
1 pts
which of the following pairs of elements would you expect to form an ionic bond?
o n and p
o c and f
o s and s
o rb and cl
question 4
1 pts
which of the following pairs of elements would you expect to form a polar covalent bond?
o s and s
o b and h
o ba and s
o n and p
Question 2
Electronegativity increases across a period from left to right in the periodic table. Carbon (C), nitrogen (N), and oxygen (O) are in the same period (period 2). As we move from C (group 14) to N (group 15) to O (group 16), the electronegativity increases.
Ionic bonds form between metals and non - metals. Rubidium (Rb) is a metal (alkali metal) and chlorine (Cl) is a non - metal. Nitrogen (N) and phosphorus (P) are both non - metals (form covalent bonds), carbon (C) and fluorine (F) are non - metals (form covalent bonds), and two sulfur (S) atoms will form a non - polar covalent bond (since they are the same element).
A polar covalent bond forms between two non - metals with a significant electronegativity difference. Boron (B) and hydrogen (H) are non - metals. The electronegativity of B is 2.04 and of H is 2.20, creating a small electronegativity difference. Two sulfur (S) atoms form a non - polar covalent bond (same element, no electronegativity difference). Barium (Ba) is a metal and sulfur (S) is a non - metal (form ionic bond). Nitrogen (N) and phosphorus (P) are non - metals but have a relatively small electronegativity difference compared to B - H in this context (N: 3.04, P: 2.19).
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C < N < O