Periodicity Flashcards

1
Q

Forces of attraction in metal

A

Electrostatic

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2
Q

Electron configuration of Ni +2

A

1s2 2s2 2p6 3s2 3p6 3d8

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3
Q

Name something that can react with acid E.g. HCl

A

Any alkali E.g. NaOH

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4
Q

Why is the melting point of magnesium is higher than that of sodium

A

Greater ionic charge
Smaller ion
More delocalised electrons
Stronger attraction between ions and delocalised electrons

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5
Q

General trend in ionisation energy across period 3

A

Increases
More protons but same shielding

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6
Q

What does an element have to have in order to be classed as p block element

A

Outer electrons are in p orbital

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7
Q

Why are Van Der waals weak in liquid non-metal

A

Particles are single atoms with electrons closer to nucleus
Cannot be easily polarised

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8
Q

Trend in atomic radius down group

A

Increases
Even though more protons

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9
Q

In electron configuration what happens after 4p6

A

5s2
(Same rules as 4s2)

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10
Q

What bonding is in a substance that does not conduct electricity when molten

A

Covalent

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11
Q

Describe in terms of electrons bonding in Na2S

A

Each sodium loses electron to form +1 charge then the sulfur gains the electrons from the sodium to form -2 charge

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12
Q

Trend in melting point across period 3

A

Increases sodium to aluminium
Metallic bonding
As we move across number of delocalised electrons per metal atom increases and radius decreases greater electrostatic forces of attraction.
Silicon increases
Macro molecular structure strong covalent bonds
Decreases after phosphorus
Van der waals which are weak

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13
Q

Why has highest melting point out of p s and cl + why

A

Sulfur
It is the largest molecule out of the 3 so has the most Van der waals

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14
Q

Observation when magnesium reacts with steam

A

White light

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15
Q

Trend in melting point down group 2 and why

A

Decreases
Metallic bonding
The radius of the metal ion increases but the number of delocalised electrons stays the same

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