Chapter 15 Flashcards

(14 cards)

1
Q

Arrhenius acid

A
  • a compound that produces H3O+ ions in aquepus solutions
  • always contain covalently bonded H atoms that ionize when the compound dissolves in water
  • Strong acids:
    • ionize completely in water(rxn goes to completion
    • Ka>>1
      • EX: HCl, HNO3, H2SO4 (1st dissociation only), HClO4, HBr, HI
  • Weak acids:
    • only some molecules ionize in water
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2
Q

Arrhenius base

A
  • a compound that produces OH- ions in aqueous solutions
  • Strong bases:
    • Most are hydroxides of the group 1 and 2 elements(if soluble)
    • Kb>>1
      • magnitude of Kb indicates base strength
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3
Q

conjugat acid-base pair

A
  • a Bronsted-Lowry acid and base that differ from each other only by a H+ ion: acid ⇌ conjugate base + H+
    • B-L acid: an H+ donor
    • B-L base: an H+ acceptor
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4
Q

conjugate base

A
  • the base formed when a Brønsted–Lowry acid donates a H+ ion
  • Acid(aq)+H2O(l) ⇌ conjugate base(aq) +H3O+(aq)
    • the stronger the acid, the weaker the conjugate base and vice versa
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5
Q

conjugate acid

A
  • the acid formed when a Brønsted–Lowry base accepts a H1 ion
  • Base(aq)+H2O(l) ⇌ conjugate acid(aq) +OH-(aq)
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6
Q

leveling effect

A
  • the observation that all strong acids have the same strength in water and are completely converted into solutions of H3O+ ions
    • strong bases are likewise leveled in water and are completely converted into solutions of OH- ions
  • means that the conjugate acid of H2O (H3O+) is the strongest acid that can exist in water
    • also, the strongest base that can exist in water is the conjugate base of H2O: the OH- ion
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7
Q
A
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8
Q

autoionization

A
  • the process that produces equal and very small concentrations of H3O+ and OH- ions in pure water
  • H2O(l)+H2O(l)⇌H3O+(aq)+OH-(aq)
    • one water molec acts as an acid and donates H+ to other that functions as a base
    • water is a pure liquid, so we don’t include its concentration in equilibrium constant expression
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9
Q

pH

A
  • -log[H3O+] in aq soln
  • It is logarithmic, so a change in one pH unit = a 10-fold change in [H3O+]
  • large pH corresponds to small [H3O+] values
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10
Q

degree of ionization

A
  • the ratio of the quantity of a substance that is ionized to the concentration of the substance before ionization
    • when expressed as a percetage…called percent ionization
    • % ionization = [H3O+]equilibrium/[HA]initialx100%
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11
Q

monoprotic acid

A

an acid that has one ionizable hydrogen atom per molecule

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12
Q

polyprotic acid

A
  • an acid that has two or more ionizable hydrogen atoms per molecule such assulfuric acid(H2SO4) and phsphoric acid(H3PO4)
    • there are also diprotic and triprotic
  • Ka1>Ka2: it is harder to remove H+ from an anion
  • Usuaully only the first Ka(Ka1) effects the pH of the soln
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13
Q

amphoteric

A
  • can act as either an acid or base
    • Water!
      • pure water is virtually ALL molecules
        • it is a poor conductor
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14
Q

Salts and pH

A
  • Sometimes adding a salt to a soln will change the pH
    • conjugate bases from stron acids are so weak they won’t react with water
      • Br-(aq)+H2O(l)–>NR
    • group 1 and 2 hydroxides are strong bases and their cations won’t react with water
      • Na+(aq)+H2O(l)–>NR
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