F321-Ionic Bonding Flashcards

0
Q

Define ionic bond

A

The electrostatic attraction between oppositely charged ions

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1
Q

What forms ionic bonds?

A

Metals and non-metals

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2
Q

When drawing ionic bonds, what should you do?

A

Show the outer electrons only, put brackets around the element, include the charge and any additional big numbers

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3
Q

Explain why the strength of ionic bonds in MgO is much higher than that if those in NaCl.

A
  • Mg2+ has a higher ionic charge than Na+
  • O2- has a higher ionic charge than Cl-
  • there is a greater electrostatic attraction between Mg2+ and Cl-
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4
Q

Describe the bonding and structure in ionic substances

A

They have ionic bonding-the electrostatic attraction between oppositely charged ions
They have a GIANT structure-held together by strong ionic bonds

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5
Q

Describe the melting points in ionic substances

A

They have high melting points because a lot of energy is required to overcome the strong ionic bonds

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6
Q

Describe the electrical conductivity in solid ionic substances

A

They cannot conduct electricity. This is because the ions are fixed in a lattice and cannot move and carry charge.

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7
Q

Describe the electoral conductivity in molten/aqueous ionic substances.

A

They can conduct electricity. The lattice breaks down and the ions are free to move an carry charge.

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8
Q

Describe the solubility of ionic substances

A

They are very soluble.

Ions are attracted to polar water molecules which breaks apart the lattice

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