chapter 7 Flashcards

1
Q

what is meant by the term periodicity

A
  • a repeating trend in properties of elements across each period
  • electron configuration
  • ionization energy
  • structure
  • melting points
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2
Q

what is meant by the term first ionisation energy

A
  • the energy required to remove one electron from each atom in one mole of gaseous atoms of an element
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3
Q

what factors effect the first ionisation energy

A
  • atomic radius
  • nuclear charge
  • inner shell shielding
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4
Q

what is the group trend in ionisation energy

A
  • the first ionisation energy will decrease down a group
  • the atomic radius will increase
  • inner shell shielding increases
  • nuclear attraction decreases
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5
Q

what is the periodic trend in first ionisation energy

A
  • the first ionisation energy will increase across a period
  • nuclear charge will increase
  • the atomic radius will decrease
  • nuclear attraction increases
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6
Q

why does Be have a higher first ionisation energy than B

A
  • the 2p subshell has a higher energy than the 2s subshell
  • this means its easier to remove an electron from the 2p subshell in B than the 2s subshell in Be
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7
Q

why does N have a higher first ionisation energy than O

A
  • N has no spin pair electrons in the 2p subshell, which have equal repulsion as far apart as possible
  • O includes a spin pair in the 2p orbital, which has less repulsion
  • its easier to remove an electron from a spin pair than from a lone pair
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8
Q

what happens to successive ionisation energies

A
  • they will increase
  • the second electron will be removed from a positive ion
  • the remaining electrons will be pulled closer to the nucleus
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9
Q

what is metallic bonding

A
  • the strong electrostatic attraction between metal cations and a sea of delocalised electrons
  • metal cations are not free to move, they are held in a fixed position
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10
Q

explain the electrical conductivity of metals

A
  • they have high conductivity
  • they can conduct in solid and in molten states
  • the delocalised electrons can move throughout which means they are mobile charge carriers
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11
Q

explain the melting and boiling points in metals

A
  • most metals have high melting and boiling points
  • they depend on the strength of the metallic bond
  • a large amount of energy is required to break the bonds which leads to a high melting and boiling points
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12
Q

explain the solubility of metals

A
  • metals are insoluble
  • they will not dissolve
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13
Q

what non metals form giant structures

A
  • boron
  • carbon
  • silicon
  • the atoms are held together by a network of strong covalent bonds to form a giant covalent lattice
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14
Q

what are the properties of diamond

A
  • they have very high melting and boiling points
  • its insoluble
  • they do not conduct electricity as they have no mobile charge carriers
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15
Q

what are the properties of graphite

A
  • very high melting and boiling points
  • insoluble
    can conduct electricity because it has a sea of delocalised electrons which are mobile charge carriers
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16
Q

what is graphene

A
  • a single layer of graphite
  • it has the same electrical conductivity as copper
  • thinnest and strongest material ever made