Unit: Acids, Bases, and Solutions
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Transcript of Unit: Acids, Bases, and Solutions
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Unit: Acids, Bases, and SolutionsNeutralization Reactions and
Titrations
Day 5 - Notes
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After today you will be able to…
•Explain what a neutralization reaction is
•Write the corresponding formulas in neutralization reactions
•Calculate an unknown concentration of an acid or base using a titration
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Neutralization Reactions
A neutralization reaction is a double replacement reaction between an acid and a base to produce water (NUETRAL pH )and a salt (an ionic compound that does not affect the pH).
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Neutralization Examples
Predict the products in words and formulas, and balance! (Acid + Base ----- water + Salt )
Predict in formulas only and balance.__ Ca(OH)2 + __ H3(PO4)
sulfurous acid +
potassium
hydroxide
hydrogen sulfite
water+ potassium sulfite
__ H2O + __ Ca3(PO4)2
Ca(OH)
H(PO4)
H(OH)
1231
3112
3
36
6
66
2
62
1Ca+2 (PO4)-
3
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In a titration, a solution of known concentration (called
the standard solution) is used to determine the
concentration of an unknown solution.
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TitrationsA known quantity of one solution is measured out, and the other solution is added from the buret until the two solutions have neutralized each other.
The point at which two solutions have neutralized each other is called the endpoint of the titration.
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TitrationsAn indicator is used to mark the endpoint of the titration.
•Phenolphthalein: Is an indicator often used in acid-base titrations. It is colorless in acid and pink in base.
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Titration Setup
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Titration Calculations
To calculate the unknown concentration of an acid or base using titrations, the following steps are used:1.Write the balanced chemical equation.2.Convert the known molarity into moles using the molarity formula: M=mol/L.3.Convert moles of known into moles of unknown using the mole ratio.4.Using the molarity equation, use moles of unknown and divide by volume to get molarity.
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Example0.025L of a 0.28M HF solution is neutralized by 0.047L of an unknown Mg(OH)2 solution. What is the concentration of the Mg(OH)2?
___ HF + ___ Mg(OH)2 ___ H2O + ___ MgF2
H(OH)2 21 1
0.025L0.28M
0.047L? M
Step 1:
0.28M =
mol0.025
Lmol HF
=0.007m
ol
Step 2:0.007mol HFx
2 mol HF1 mol Mg(OH)2=0.0035 mol
Mg(OH)2
Step 3:0.0035 mol0.047L
=0.074M Mg(OH)2
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Example0.037L of a 0.195M HBr solution is neutralized by 0.0536L of an unknown KOH solution. What is the concentration of the KOH?
___ HBr + ___ K(OH) ___ H2O + ___ KBrH(OH)
1 11 10.037L0.195M
0.0536L? M
Step 1:
0.195M =
mol0.037
Lmol HBr
=0.0072m
ol
Step 2:0.0072mol
HBrx
1 mol HBr1 mol K(OH) =0.0072 mol
K(OH)
Step 3:0.0072 mol0.0536L
=0.13M K(OH)
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Questions?Begin WS5