topic 3: redox I Flashcards

1
Q

what is oxidation

A

electron loss

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2
Q

what is reduction

A

electron gain

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3
Q

what is the rules for assigning oxidation numbers

A
  1. all uncombined elements have an oxidation number of zero
  2. the oxidation numbers of the elements in a compound add
    up to zero
  3. the oxidation number of a monoatomic ion is equal to the
    ionic charge
  4. in a polyatomic ion (CO3
    2-) the sum of the individual
    oxidation numbers of the elements adds up to the charge
    on the ion
  5. several elements have invariable oxidation numbers in their
    common compounds.
    Group 1 metals = +1
    Group 2 metals = +2
    Al = +3
    H = +1 (except in metal hydrides where it is –1 eg NaH)
    F = -1
    Cl, Br, I = –1 except in compounds with oxygen and fluorine
    O = -2 except in peroxides (H2O2 ) where it is –1 and in compounds with fluorine
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4
Q

how can oxidation number of an element with various oxidation numbers be represented

A

roman numerals

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5
Q

what is the reducing agent

A

electron donor

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6
Q

what is the oxidising agent

A

electron acceptor

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7
Q

what is the product when an acid and metal react

A

salt + hydrogen

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8
Q

what is disproportionation

A

a reaction where the same species is oxidised and reduced simultaneously

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9
Q

what is used to balance H atoms

A

H+

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10
Q

what is used to balance out the O

A

H2O

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11
Q

what is used to balance the oxidation number

A

electrons

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