Periodic trends
Group I
Group VII
Group 0
Transition metals
100

What information does the period number provide about an atom?

the number of electron shells

100

Does the melting point increase or decrease down the Group?

Decrease

100

State a physical property that increases down the group

melting point, boiling point, colour intensity

100

All noble gases exist as ______________ molecules

monatomic

100

What do you know about the colours of transition metals

the IONIC compounds are coloured. The metal elements  themselves are normally silvery grey (except for copper and gold)

200

Which property, metallic or non metallic, decreases across a period?

metallic property

200

Can lithium displace rubidium from its solution?

No. Lithium is less reactive.

200

ionic compounds with halogens are called _____________

halides

200

State one use of noble gas.

argon in lightbulbs, helium in balloons, neon in light strips

200

What is special about the oxidation states of transition metals? 

the are varied

300

Elements in the same group have similar chemical properties. Explain why.

They have the same number of valence electrons.

300

Why is rubidium more reactive than sodium?

its valence electron is further from the nucleus, so it loses the electron more readily

300

What is observed when chlorine gas is bubbled into sodium iodide solution?

colourless solution turns brown due the formation of aqueous iodine.

300

Why are noble gases inert?

they have a stable electronic configuration / they dont lose, gain or share electrons

400

X, Y and Z are in the same period of the Periodic Table. X forms an acidic oxide, Y forms a basic oxide and Z forms an amphoteric oxide. If X, Y and Z were placed in order of increasing atomic number (lowest atomic number first), the order would be

Y - Z - X

400

Why are Group I metals stored in oil?

Prevent them from reacting readily wih water and oxygen in the air

400

Identify the oxidising agent and reducing agent in the following reaction.

Cl2 (aq) + 2NaBr (aq) --> 2NaCl (aq) + Br2 (aq)

oxidising: chlorine
reducing: NaBr

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