periodic trends -ionization energy

periodic trends -ionization energy

Assessment

Flashcard

Chemistry

10th Grade

Hard

Created by

Wayground Content

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15 questions

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1.

FLASHCARD QUESTION

Front

What is ionization energy?

Back

The energy required to remove an electron from an atom in its gaseous state.

2.

FLASHCARD QUESTION

Front

How does atomic radius affect ionization energy?

Back

The smaller the atomic radius, the stronger the attraction between the nucleus and the electrons, resulting in higher ionization energy.

3.

FLASHCARD QUESTION

Front

What is the trend of ionization energy across a period?

Back

Ionization energy generally increases across a period from left to right due to increasing nuclear charge.

4.

FLASHCARD QUESTION

Front

What is the trend of ionization energy down a group?

Back

Ionization energy generally decreases down a group due to increased atomic radius and electron shielding.

5.

FLASHCARD QUESTION

Front

What is the second ionization energy?

Back

The energy required to remove the second electron from an atom after the first has been removed.

6.

FLASHCARD QUESTION

Front

Why does fluorine have a higher ionization energy than nitrogen?

Back

Fluorine has a higher ionization energy because it has a smaller atomic radius and a stronger effective nuclear charge.

7.

FLASHCARD QUESTION

Front

What is effective nuclear charge?

Back

The net positive charge experienced by an electron in a multi-electron atom, accounting for shielding by other electrons.

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