QUESTION IMAGE
Question
unit 4: periodic trends
directions: answer each question completely. indicate how you determined the answer to each question below.
- draw two separate arrows indicating the direction of increasing atomic size for the period and group trends.
- draw two separate arrows indicating the direction of increasing ionization energy for the period and group trends.
- why does a cation decrease in size?
- which element is the most electronegative? what does that mean it would do when forming a bond?
Brief Explanations
- Atomic size increases down a group (more electron shells) and decreases across a period (higher nuclear charge pulls electrons closer).
- Ionization energy increases across a period (higher nuclear charge) and decreases down a group (electrons are farther from the nucleus).
- A cation loses electrons, reducing electron-electron repulsion and often removing an entire electron shell, so the remaining electrons are pulled closer to the nucleus.
- Fluorine is the most electronegative element; it attracts bonding electrons strongly, often gaining electrons to form negative ions.
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- Period trend: Arrow from right to left; Group trend: Arrow from top to bottom (on the periodic table outline).
- Period trend: Arrow from left to right; Group trend: Arrow from bottom to top (on the periodic table outline).
- Loss of electrons reduces repulsion and may remove a shell, shrinking the ion.
- Fluorine; it strongly attracts bonding electrons.