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Published byPierce Stanley Modified over 5 years ago
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Acids Bases OPERATIONAL DEFINITIONS Liberate H2 with metals
Phenolphthalein – clear Litmus – red Taste - sour Bases Slippery Phenolphthalein – pink Litmus – blue Taste - bitter
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Arrhenius… Brönsted -Lowry Arrhenius… Brönsted -Lowry
Bases liberate hydroxide (OH-) ions in solution Brönsted -Lowry Bases are proton acceptors Arrhenius… Acids liberate hydrogen(H+) ions in solution Brönsted -Lowry Acids are proton donors
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Ka is the equilibrium constant associated with the reaction when an acid reacts with water to form its conjugate base and hydronium Kb is the equilibrium constant associated with the reaction when a base reacts with water to form its conjugate acid and hydroxide
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mL of 0.10 M NaOH to neutralize
pH ACID (20. mL) [ ] Strength mL of 0.10 M NaOH to neutralize (hydrohalic) HCl 0.10 strong 20. 1 monoprotic (oxyacid) strong 1 H2SO4 0.10 40. diprotic (organic) weak HC2H3O2 0.10 20. 2.5 monoprotic
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