Flashcards: Periodic Table and Periodic Trends — 69 cards

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1Question

How many elements does the modern periodic table contain?

Answer

118 elements.

2Question

How are elements arranged in the modern periodic table?

Answer

In increasing atomic number.

3Question

Who grouped elements into triads in 1829?

Answer

Döbereiner.

4Question

What was the key property of Döbereiner's triads?

Answer

The middle element's atomic weight was roughly the average of the other two.

5Question

Who arranged 62 elements by increasing atomic mass in 1864?

Answer

John Newlands.

6Question

What pattern did John Newlands observe in 1864?

Answer

Every eighth element resembled the first in properties.

7Question

Who predicted undiscovered elements by leaving gaps in 1869?

Answer

Dmitri Mendeleev.

8Question

What method did Moseley use in 1913 to determine atomic numbers?

Answer

X-ray emission.

9Question

How many periods does the modern periodic table have?

Answer

Seven horizontal rows called periods.

10Question

How many groups are in the modern periodic table?

Answer

Eighteen vertical columns called groups.

11Question

Why do elements in the same group have similar chemical properties?

Answer

Because they have the same number of valence electrons.

12Question

How do physical properties change within a group from top to bottom?

Answer

They change gradually from top to bottom.

13Question

How do element properties change within a period?

Answer

They show a gradual change from left to right.

14Question

What ion do metals tend to form?

Answer

Positive ions by losing electrons.

15Question

What ion do nonmetals tend to form?

Answer

Negative ions by gaining electrons.

16Question

What properties do metalloids display?

Answer

Properties of both metals and nonmetals.

17Question

Which block contains elements with valence electrons in s subshells?

Answer

The s-block.

18Question

Which block contains transition elements?

Answer

The d-block.

19Question

Which groups does the p-block contain?

Answer

Groups 13 to 18.

20Question

Which elements are alkali metals?

Answer

Group 1 elements Li, Na, K, Rb, Cs, and Fr.

21Question

How many valence electrons do alkali metals have?

Answer

One valence electron.

22Question

Which group contains alkaline earth metals?

Answer

Group 2.

23Question

How reactive are alkaline earth metals compared to alkali metals?

Answer

They are less reactive than alkali metals.

24Question

Why are noble gases almost unreactive under normal conditions?

Answer

They have complete outer shells.

25Question

What does the period number indicate in the periodic table?

Answer

The number of electron shells.

26Question

What does the group number indicate for main-group elements?

Answer

The number of valence electrons.

27Question

Which element is in Period 3 and Group 2 with a 3s² valence configuration?

Answer

Magnesium.

28Question

How many electron shells does magnesium have?

Answer

Three shells.

29Question

How many valence electrons does magnesium have?

Answer

Two valence electrons.

30Question

How many valence electrons does an element in Group 13 have?

Answer

Three valence electrons.

31Question

Which shell contains the valence electrons for a Group 13, Period 3 element?

Answer

The third shell.

32Question

What is the electron configuration of a Group 13, Period 3 element?

Answer

1s² 2s² 2p⁶ 3s² 3p¹.

33Question

What is atomic radius defined as?

Answer

Half the distance between two identical bonded atoms.

34Question

In what units is atomic radius commonly measured?

Answer

Picometres or angstroms.

35Question

Why does atomic radius decrease from left to right across a period?

Answer

Increasing nuclear charge pulls the electron cloud closer.

36Question

Why does atomic radius increase down a group?

Answer

Additional shells increase shielding and enlarge the atom.

37Question

Why is a cation generally smaller than its neutral atom?

Answer

Electron loss removes a shell and strengthens nuclear attraction.

38Question

Why is an anion generally larger than its neutral atom?

Answer

Added electrons increase repulsion.

39Question

Why does ionization energy decrease down a group?

Answer

Because increasing atomic size and shielding make valence electrons easier to remove.

40Question

Why does ionization energy increase from left to right across a period?

Answer

Because effective nuclear charge increases.

41Question

What is the order of first ionization energy in Group 1 elements?

Answer

Li > Na > K > Rb > Cs.

42Question

How does spin-pair repulsion affect ionization energy?

Answer

It slightly lowers ionization energy by making paired electrons easier to remove.

43Question

What causes spin-pair repulsion to lower ionization energy?

Answer

Paired electrons repel one another.

44Question

What is the electron configuration of chromium?

Answer

[Ar] 3d⁵4s¹.

45Question

What is the electron configuration of manganese?

Answer

[Ar] 3d⁵4s².

46Question

Why is removing a paired 4s electron from manganese easier?

Answer

Because paired electrons experience repulsion, lowering ionization energy.

47Question

What is first electron affinity?

Answer

The enthalpy change when gaseous atoms gain electrons to form uninegative ions.

48Question

How is chlorine's first electron affinity reaction represented?

Answer

Cl(g) + e⁻ → Cl⁻(g) with ΔH°ea¹ = -348.8 kJ/mol.

49Question

What is oxygen's first electron affinity value?

Answer

ΔH°ea¹ = -142 kJ/mol.

50Question

Why is oxygen's second electron affinity positive?

Answer

Because the negative ion repels the incoming electron.

51Question

How does electron affinity change across a period?

Answer

It generally becomes more negative from left to right.

52Question

How does electron affinity change down a group?

Answer

It decreases as atomic size and nucleus distance increase.

53Question

What is electronegativity?

Answer

The power of an atom to attract shared electrons in a molecule.

54Question

What values does the Pauling scale assign to fluorine and alkali metals?

Answer

Fluorine has 4.0 and alkali metals have 0.8.

55Question

What is the reaction formula for sodium with water?

Answer

2Na(s) + 2H2O(l) → 2NaOH(aq) + H2(g)

56Question

What product forms when sodium burns in oxygen?

Answer

Sodium peroxide (Na2O2) forms.

57Question

What can limited oxygen or high temperature produce when sodium burns?

Answer

Sodium oxide can be produced.

58Question

What is the formula for sodium reacting with chlorine?

Answer

2Na(s) + Cl2(g) → 2NaCl(s)

59Question

What is the formula for magnesium reacting with chlorine?

Answer

Mg(s) + Cl2(g) → MgCl2(s)

60Question

How do oxides and chlorides of Groups 1–3 differ from those of Groups 4–7?

Answer

Groups 1–3 compounds are predominantly ionic, Groups 4–7 are more covalent.

61Question

Why are oxides and chlorides of Groups 4–7 more covalent?

Answer

Because electronegativity increases across the period.

62Question

What does a basic oxide produce when reacting with water?

Answer

An alkali.

63Question

What type of element oxides are usually basic oxides?

Answer

Group 1 and Group 2 metal oxides.

64Question

What does an acidic oxide produce when reacting with water?

Answer

An acid.

65Question

What type of oxides are generally acidic oxides?

Answer

Covalent nonmetal oxides.

66Question

What is an amphoteric oxide?

Answer

An oxide that reacts with both acids and bases.

67Question

How do Group 1 and Group 2 chlorides behave in water compared to chlorides from aluminium to sulfur?

Answer

Group 1 and 2 chlorides are neutral; aluminium to sulfur chlorides produce acidic solutions.

68Question

Why is the oxidation number of a Period 3 element in oxides or chlorides positive?

Answer

Because oxygen and chlorine are more electronegative than Period 3 elements.

69Question

How does the oxidation number change across Period 3 oxides and chlorides?

Answer

It increases from +1 in sodium to +6 in sulfur for oxides, and to +5 in phosphorus for chlorides.

Test yourself with the quiz

Test your knowledge with 28 questions on Periodic Table and Periodic Trends.

1. Which principle determines the order of elements in the modern periodic table?

2. What significant contribution did Dmitri Mendeleev make in 1869?

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