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7: Intermolecular Forces

  • Page ID
    568636
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    • 7.1: Interactions between Molecules
      This page explains the melting point as the temperature at which a solid becomes a liquid, highlighting the phase transition where particle vibrations surpass attractive forces. It notes that solids are incompressible due to their fixed particle arrangement. The page emphasizes the importance of intermolecular forces on melting points, illustrating differences with examples like sodium chloride and ice, and establishes water's melting point equilibrium at 0 °C.
    • 7.2: Properties of Liquids and Solids
      This page explains the properties of condensed phases, which include solids and liquids. Solids have fixed particles, ensuring definite shape and volume, while liquids have movable particles, offering a definite volume but no specific shape. The transition between solid and liquid maintains similar volume, unlike the significant volume increase when transitioning from liquid to gas.
    • 7.3: Intermolecular Forces - London Dispersion Forces, Dipole–Dipole Forces, Hydrogen "Bonding"
      This page covers intermolecular forces in liquids, emphasizing their impact on physical properties and phase transitions. It details dipole-dipole interactions, London dispersion forces, and hydrogen bonding. Dipole-dipole forces arise from polar molecules, while London dispersion forces occur in nonpolar molecules due to temporary electron fluctuations. Hydrogen bonds, formed with electronegative elements, significantly influence water's boiling point and ice's lower density.
    • 7.4: Types of Crystalline Solids
      This page categorizes crystalline solids into four classes: ionic, metallic, covalent network, and molecular. It details their unique properties, including conductivity, melting and boiling points, and structural characteristics. Ionic crystals consist of alternating charged ions; metallic crystals have mobile valence electrons; covalent network crystals feature strong covalent bonds, while molecular crystals are formed by weaker intermolecular forces.


    This page titled 7: Intermolecular Forces is shared under a Public Domain license and was authored, remixed, and/or curated by Anne Petersen.

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