CH 3 Flashcards

1
Q

Dalton

A
  • hook & eye method (drove Pauling to write Nature of Chemical Bond)
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2
Q

Hook & eye atomic attachment

A

Argued that atoms of solids were hooked & stuck to one another

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3
Q

G.N. Lewis

A
  • Used Thomson’s discovery of electron
  • Recognized valence electrons fundamental to bonding
    • electron transfer = IONIC bond
    • sharing electrons = COVALENT bonds
    • atoms tend to acquire noble-gas electronic configs
  • lewis theory & dot structure
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4
Q

chemical bonds

A

the attraction between electrons of 1 atom to the nucleus of another atom

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5
Q

Alkali metals

A
  • group 1
  • most reactive metals
  • monovalent when react w/nonmetals
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6
Q

halogens

A
  • group 7a or 17
  • most reactive nonmetals
  • monovalent when react with metals
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7
Q

Abegg’s law of valence

A

the diff btwn the max pos & neg valences of an element is frequently 8

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8
Q

Noble gases

A
  • inert (will not form compounds)
  • unreactive
  • no unpaired electrons
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9
Q

Lewis theory

A
  • emphasizes role of valences in bonding
    1. every atom has core of electrons (unchanged) that contains excess of positive charges
    2. atom has an outer shell, which, in the neutral atom, contains negative elctrons = to pos charges of core
  • # of electrons in outer shell may vary during chemical change btwn 0 & 8
    1. the atom tends to hold an even # of electrons in outer shell
    2. 2 atomic shells are mutually interpenetrable (overlap). valence electrons may pass completely into another atom to form shared electron pairs
    3. electrons can readily pass from one position in outer shell to another (held by electrostatic forces)
    4. Electrostatic forces btwn electrons @ very close distances don’t obey simple law of electrostatic potential. electrons will instead follow Quantum Mechanics & may pair-up to form a bond
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