Solution Summary: The author explains that the equilibrium constant of an acid dissociation reaction depends on the strength of the acid involved in the reaction.
Interpretation: The value of pKa for the given compound is to be calculated.
Concept introduction: The equilibrium constant of an acid dissociation reaction depends on the strength of an acid involved in the reaction. The Ka value is large for strong acids and small for weak acids.
Acid dissociation constant Ka represents the acidity of an acid in a solution.
For an acid dissociation reaction,
HA+H2O⇌H3O++A−
Ka=[H3O+][A−][HA]
pKa=−logKa
The strength of an acid decreases as the value of pKa increases.
Answer to Problem 2.45P
The value of pKa for the given compound is 9.3279.
Explanation of Solution
The given value of Ka is 4.7×10−10.
The value of pKa is calculated by the formula,
pKa=−logKa
Substitute the value of Ka in the above formula to calculate the value of pKa.
Hence, the value of pKa for the given compound is 9.3279.
Conclusion
The value of pKa for the given compound is 9.3279.
Expert Solution
Interpretation Introduction
(b)
Interpretation: The value of pKa for the given compound is to be calculated.
Concept introduction: The equilibrium constant of an acid dissociation reaction depends on the strength of an acid involved in the reaction. The Ka value is large for strong acids and small for weak acids.
Acid dissociation constant Ka represents the acidity of an acid in a solution.
For an acid dissociation reaction,
HA+H2O⇌H3O++A−
Ka=[H3O+][A−][HA]
pKa=−logKa
The strength of an acid decreases as the value of pKa increases.
Answer to Problem 2.45P
The value of pKa for the given compound is 4.6383.
Explanation of Solution
The given value of Ka is 2.3×10−5.
The value of pKa is calculated by the formula,
pKa=−logKa
Substitute the value of Ka in the above formula to calculate the value of pKa.
Hence, the value of pKa for the given compound is 4.6383.
Conclusion
The value of pKa for the given compound is 4.6383.
Expert Solution
Interpretation Introduction
(c)
Interpretation: The value of pKa for the given compound is to be calculated.
Concept introduction: The equilibrium constant of an acid dissociation reaction depends on the strength of an acid involved in the reaction. The Ka value is large for strong acids and small for weak acids.
Acid dissociation constant Ka represents the acidity of an acid in a solution.
For an acid dissociation reaction,
HA+H2O⇌H3O++A−
Ka=[H3O+][A−][HA]
pKa=−logKa
The strength of an acid decreases as the value of pKa increases.
Answer to Problem 2.45P
The value of pKa for the given compound is 0.23.
Explanation of Solution
The given value of Ka is 5.9×10−1.
The value of pKa is calculated by the formula,
pKa=−logKa
Substitute the value of Ka in the above formula to calculate the value of pKa.
Draw the products of the reaction shown below. Use wedge and dash bonds
to indicate stereochemistry. Ignore inorganic byproducts.
OSO4 (cat)
(CH3)3COOH
Select to Draw
ઘ
Calculate the reaction rate for selenious acid, H2SeO3, if 0.1150 M I-1 decreases to 0.0770 M in 12.0 minutes.
H2SeO3(aq) + 6I-1(aq) + 4H+1(aq) ⟶ Se(s) + 2I3-1(aq) + 3H2O(l)
Problem 5-31
Which of the following objects are chiral?
(a) A basketball
(d) A golf club
(b) A fork
(c) A wine glass
(e) A spiral staircase
(f) A snowflake
Problem 5-32
Which of the following compounds are chiral? Draw them, and label the chirality centers.
(a) 2,4-Dimethylheptane
(b) 5-Ethyl-3,3-dimethylheptane
(c) cis-1,4-Dichlorocyclohexane
Problem 5-33
Draw chiral molecules that meet the following descriptions:
(a) A chloroalkane, C5H11Cl
(c) An alkene, C6H12
(b) An alcohol, C6H140
(d) An alkane, C8H18
Problem 5-36
Erythronolide B is the biological precursor of
erythromycin, a broad-spectrum antibiotic. How
H3C
CH3
many chirality centers does erythronolide B have?
OH
Identify them.
H3C
-CH3
OH
Erythronolide B
H3C.
H3C.
OH
OH
CH3
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