Group 7 Flashcards

1
Q

What happens when the halogens are oxidised with metals?

A

Reduced to negative halide ions

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2
Q

What happens when halogens are oxidised with nonmetals?

A

Noble gas configuration of often achieved through covalent bonding

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3
Q

What are the physical properties of the halogens?

A

Nonmetallic elements that exist as diatomic molecules
Very reactive and strong oxidising agents
Less reactive as you go down the group
Nonpolar so dissolves in hydrocarbon solvents

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4
Q

How does splitting it into aliquots in a titration affect the accuracy of results?

A

Decreases accuracy

Smaller titration volume so larger percentage error

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5
Q

What is the general equation for a reaction between the halogens and sodium hydroxide in a cold dilute alkali?

A

X2 + 2OH- (aq) –> X-(aq) + XO-(aq) + H2O

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6
Q

What is the equation for the decomposition of halate I ions?

A

3XO- –> 2X-(aq) + XO3-(aq)

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7
Q

What does the products of the disproportionation reaction of halogens depend on?

A

The temperature

All examples of halogens when alkalis are disproportionation reactions

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8
Q

What can be observed when the hydrogen halides react with ammonia gas?

A

White smoke so it can be used to test for a hydrogen halide

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9
Q

What is the general equation for the reaction between ammonia gas and hydrogen halides?

A

NH3 (g) + HX(g) –> NH4X(s)

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10
Q

Which is a stronger oxidising agent? Chlorine or iodine?

A

Chlorine

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11
Q

What does concentrated sulphuric acid reacts with the halide to form?

A

NaCl(s) + H2SO4(l) –> NaHSO4(s) +HCl(g)

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12
Q

What does sulphuric acid act as when it reacts with a halide?

A

Oxidising agent

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13
Q

What is produced when sodium bromide and sulphuric acid react?

A

Br2 H2O SO2

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14
Q

What is produced when sodium iodide and sulphuric acid react?

A

H2S H2O I2

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15
Q

What is the test for chloride ions?

A

Silver nitrate
White precipitate
Soluble in dilute ammonite
Darkens in sunlight

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16
Q

What is the test for bromide ions?

A
Silver nitrate
Cream precipitate
Insoluble in dilute ammonia
Soluble in concentrated ammonia
Darkens in sunlight
17
Q

What is the test for iodide ions?

A

Silver nitrate
Yellow precipitate
Insoluble in concentrated ammonia

18
Q

Is the ionic equation for the reaction between silver nitrate and chloride?

A

Ag+ + Cl- –> AgCl(s)

19
Q

If C4H9I is used instead of C4H9Br, the rate of formation of C4H9NH2 increases. Why?

A

The C-I bond is much weaker than the C-Br bond

20
Q

Why might there be a difference between the students mean titre and the accurate value other than due to limitations in the equipment?

A

Judgement of colour at endpoint

Adding starch too early

21
Q

How do you determine how many significant figures to calculate an answer to?

A

Least accurate measurement in the experiment/calculation