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Multiple Choice
Which of the following best describes the periodic trend for electronegativity across the periodic table?
A
Electronegativity increases from left to right across a period and decreases from top to bottom down a group.
B
Electronegativity decreases from left to right across a period and decreases from top to bottom down a group.
C
Electronegativity decreases from left to right across a period and increases from top to bottom down a group.
D
Electronegativity remains constant across periods and groups.
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Verified step by step guidance
1
Step 1: Understand what electronegativity means. Electronegativity is the tendency of an atom to attract electrons towards itself when it forms a chemical bond.
Step 2: Recall the general trend of electronegativity across a period (left to right) in the periodic table. As you move from left to right across a period, the number of protons in the nucleus increases, which increases the nuclear charge and pulls electrons closer, increasing electronegativity.
Step 3: Recall the general trend of electronegativity down a group (top to bottom). As you move down a group, atoms have more electron shells, which increases the distance between the nucleus and the valence electrons, reducing the effective nuclear attraction and thus decreasing electronegativity.
Step 4: Combine these two trends to describe the overall pattern: electronegativity increases from left to right across a period and decreases from top to bottom down a group.
Step 5: Use this understanding to evaluate the given options and select the one that correctly states this trend.