The oxides of elements in period 3 Flashcards

1
Q

What do the metal oxides form? What properties does this give them?

A
  • giant ionic lattice
    • bonding extends throughout the compound
  • results in high melting points
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2
Q

How is aluminium oxide different?

A
  • ionic but with some covalent character
  • aluminium forms a very small ions with a large positive charge
  • therefore it can approach closely to the O2- ion and distort its electron cloud
  • so it has some added covalent character
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3
Q

How can the ionic character of a bond be predicted?

A
  • difference in electronegativities
  • the bigger the difference, the greater the ionic character
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4
Q

Why does silicon oxide have a large melting point?

A
  • forms a giant covalent (macromolecular) structure
  • the bonding extends throughout the giant structure, but this time it is covalent
  • high MP because many strong covalent bonds must be broken to melt it
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5
Q

Why do phosphorus and sulfur oxides have low boiling points?

A
  • exist as seperate covalently bonded molecule
  • phosphorus oxides aer solid,
    • weak vdW and dipole-dipole
  • sulfur oxides are gases
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6
Q

Why does P4O10 have a larger boiling point than sulfur oxides?

A
  • larger the molecular, the greater the intermolecular forces
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7
Q

What does a large difference in electronegativity?

A

ionic character

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