The Metallic Model

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Metallic Bonding

  • Metal atoms are tightly packed in lattice structures.
  • Outer shell electrons become delocalised and are free to move throughout the structure.
  • Metal atoms become positively charged when they lose their outer electrons.
  • The positive charges repel each other and keep the neatly arranged lattice in place.
  • Metallic bonding is the strong electrostatic attraction between positive metal centres and the 'sea' of delocalised electrons.

Metallic bonding and malleability

Metallic bonding and malleability

Properties of Metals

  • Metals are malleable (can be hammered into sheets) and ductile (can be drawn into wires).
  • Layers of metal ions can slide over each other when a force is applied, while delocalised electrons allow the metal to retain its structure without breaking bonds.
  • Metals are typically strong and hard due to strong electrostatic attraction between cations and electrons and the closely packed structure of metal ions.
  • Metals conduct electricity in both solid and liquid states because mobile electrons can freely move.
  • When a potential difference is applied, delocalised electrons move towards the positive terminal.
  • Metals are good thermal conductors: vibrating cations transfer kinetic energy to delocalised electrons, which rapidly carry it through the metal.
  • Metals have high melting and boiling points because strong electrostatic forces between cations and delocalised electrons require large amounts of energy to overcome.

Trends in Metallic Bond Strength

  • The strength of a metallic bond depends on the charge of the metal ion, the radius of the metal ion, and the number of delocalised electrons.
  • Greater charge on the metal ion means more delocalised electrons and a greater charge difference, leading to stronger electrostatic attraction.
  • Smaller ionic radius means the metal ion exerts a greater attraction on the sea of delocalised electrons, strengthening the metallic bond.
  • Increasing the number of delocalised electrons per atom, increasing positive charge, and decreasing ionic size all increase the strength of metallic bonding.

Melting Points Across a Period

  • Across Period 3, the number of valence electrons increases: Na (1), Mg (2), Al (3).
  • Aluminium ions are also smaller than magnesium or sodium ions.
  • These factors lead to stronger metallic bonding from Na to Al.
  • Stronger metallic bonding requires more energy to break the lattice, so melting points increase across the period.
  • Melting point data: Na = 371 K, Mg = 922 K, Al = 933 K.

Melting Points Down a Group

  • Down a group, the size of the cation increases.
  • This decreases the attraction between the outer electrons and the metallic lattice.
  • Therefore, the melting point decreases down the group.
  • Melting point data for Group 1: Na = 371 K, K = 337 K, Rb = 312 K.

Uses of Metals

  • The choice of metal for a job depends on properties such as malleability/ductility, melting/boiling point, density, reactivity, electrical conductivity, strength, toxicity, lustre, thermal conductivity, strength-to-weight ratio, corrosion resistance, and sonority.
  • Aluminium is used in food cans because it is non-toxic and resistant to corrosion and acidic food stuffs.
  • Copper is used in electrical wiring because it is a good electrical conductor and malleable/ductile.
  • Stainless steel is used for cutlery as it is strong and resistant to corrosion.

Transition Metals: Definition and Location

  • A transition metal is an element with an incomplete d-subshell or an element that can form at least one stable cation with an incomplete d-subshell.
  • Scandium and zinc are d-block elements but not transition metals: Sc only forms Sc³⁺ ([Ar] 3d⁰) and Zn only forms Zn²⁺ ([Ar] 3d¹⁰).
  • The first transition series is Ti to Cu.
  • Transition metals are located in the d-block: Period 4 from Ti to Cu, Period 5 from Zr to Ag.
  • Periods 6 and 7 are complicated by the presence of the f-block lanthanides and actinides.

Physical Properties of Transition Metals

  • Transition metals have a metallic lattice structure: layers of positive ions in a sea of delocalised electrons.
  • The 3d and 4s subshells are close in energy, so transition metals can delocalise d-electrons to form metallic bonds.
  • Transition metals form metallic bonds involving both s- and d-electrons, giving more delocalised electrons and stronger electrostatic attraction.
  • This results in high melting points and high electrical conductivity.
  • Period 4 transition metals have higher melting points than Group 1 and Group 2 metals (exception: Be has a melting point of 1,287 °C due to its small size).
  • The three most conductive metals are Ag > Cu > Au; copper is most used in electrical cables due to cost and conductivity.

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練習問題

無料プレビュー — 61問中8問。すべて見るには登録を。
  1. 1.Which of the following types of bonds does the statement 'electrostatic attraction between cations and delocalised electrons' best describe?

    Easy
    • Ametallic
    • Bionic
    • Chydrogen
    • Ddipole-dipole
  2. 2.Which of the following materials only contains one type of bonding?

    Easy
    • Abrass
    • Bgraphite
    • Cice
    • Diodine crystals
  3. 3.Substance L melts at 660 °C and conducts electricity when solid and when molten. What is the likely identity of substance L?

    Medium
    • AAl
    • Bgraphite
    • CLi₂O
    • DNaCl
  4. 4.What is the correct order of decreasing melting points for the Group 1 metals Na, K, Rb and Cs?

    Medium
    • ANa > K > Rb > Cs
    • BNa > K > Cs > Rb
    • CCs > Rb > K > Na
    • DK > Na > Rb > Cs
  5. 5.Which of the following Period 3 metals would have the highest melting point?

    Medium
    • AAl
    • BMg
    • CNa
    • DK
  6. 6.Which of the following species has the highest melting point?

    Medium
    • A1s² 2s² 2p⁶ 3s² 3p²
    • B1s² 2s² 2p⁶ 3s²
    • C1s² 2s² 2p⁶ 3s¹
    • D1s² 2s² 2p⁶ 3s² 3p¹
  7. 7.Which statement about metals is correct?

    Medium
    • AThe melting point of vanadium is higher than that of calcium
    • BScandium is a transition metal
    • CTransition metals are good conductors of electricity due to the incomplete d-subshell
    • DThe electronic configuration of Zn²⁺ is 1s² 2s² 2p⁶ 3s² 3p⁶ 4s² 3d¹⁰
  8. 8.Which of the following metals will have the greatest ability to conduct electricity?

    Hard
    • AAl
    • BMg
    • CNa
    • DLi

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