3.1 Periodic trends

3.1 Periodic trends

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Chemistry

11th - 12th Grade

Hard

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16 questions

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1.

FLASHCARD QUESTION

Front

Which of the following is FALSE about periodic table? Options: Group is vertical column, Period is horizontal row, s block are elements with electrons in s sublevel., Elements in same group have same number of electrons

Back

Elements in same group have same number of electrons

2.

FLASHCARD QUESTION

Front

Which of the following DOES NOT affect the ionization energy?
Options: Distance from nucleus, Nuclear charge, Electron - electron repulsion, Electronegativity

Back

Electronegativity

3.

FLASHCARD QUESTION

Front

Why does ionization increase across a period?

Back

Nuclear charge increases due to increase in proton number.

4.

FLASHCARD QUESTION

Front

Ionization decreases down the group because of the following statement except: the distance from nucleus increases, greater electron electron repulsion, nuclear charge increases due to increase in proton number, more electrons in the inner shell causing shielding effect

Back

nuclear charge increases due to increase in proton number

5.

FLASHCARD QUESTION

Front

Ionization energy decreases from Be (1s22s2) to B (1s22s22p1) due to:

  • increase in nuclear charge from Be to B
  • valence electron is further away from nucleus
  • valence electron in p sublevel, further away from nucleus
  • greater electron electron repulsion

Back

valence electron in p sublevel, further away from nucleus

6.

FLASHCARD QUESTION

Front

Ionization energy decreases from N (1s22s22p3) to O (1s22s22p4) due to:

  • increase in nuclear charge from N to O
  • valence electron is further away from nucleus
  • valence electron in 2p sublevel, further away from nucleus
  • greater electron electron repulsion in same 2p orbital

Back

greater electron electron repulsion in same 2p orbital

7.

FLASHCARD QUESTION

Front

Ionization energy for period 3 is less than period 2 due to

Back

valence electron for period 3 is further away from nucleus

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