Solubility of C a 5 ( P O 4 ) 3 O H and C a 5 ( P O 4 ) 3 O H has to be calculated. Concept Introduction: Solubility Product: The solubility product constant, K s p is the equilibrium constant for a solid substance dissolving in an aqueous solution. It represents the level at which a solute dissolves in solution. Consider the general dissolution reaction below (in aqueous solutions): a A ( s ) ⇄ c C ( a q ) + d D ( a q ) The solubility product for the above solid can be written as K s p = [ C ] c [ D ] d Where, [ C ] = C o n c e n t r a t i o n o f C [ D ] = C o n c e n t r a t i o n o f D Solubility: The solubility of a solute in a particular solvent is the maximum concentration that may be achieved under given conditions when the dissolution process is at equilibrium. It is expressed by the symbol S. Unit of solubility is g/L.
Solubility of C a 5 ( P O 4 ) 3 O H and C a 5 ( P O 4 ) 3 O H has to be calculated. Concept Introduction: Solubility Product: The solubility product constant, K s p is the equilibrium constant for a solid substance dissolving in an aqueous solution. It represents the level at which a solute dissolves in solution. Consider the general dissolution reaction below (in aqueous solutions): a A ( s ) ⇄ c C ( a q ) + d D ( a q ) The solubility product for the above solid can be written as K s p = [ C ] c [ D ] d Where, [ C ] = C o n c e n t r a t i o n o f C [ D ] = C o n c e n t r a t i o n o f D Solubility: The solubility of a solute in a particular solvent is the maximum concentration that may be achieved under given conditions when the dissolution process is at equilibrium. It is expressed by the symbol S. Unit of solubility is g/L.
Solubility of Ca5(PO4)3OH and Ca5(PO4)3OH has to be calculated.
Concept Introduction:
Solubility Product:
The solubility product constant, Ksp is the equilibrium constant for a solid substance dissolving in an aqueous solution. It represents the level at which a solute dissolves in solution.
Consider the general dissolution reaction below (in aqueous solutions):
aA(s)⇄cC(aq)+dD(aq)
The solubility product for the above solid can be written as
Ksp=[C]c[D]d
Where,
[C]=ConcentrationofC[D]=ConcentrationofD
Solubility:
The solubility of a solute in a particular solvent is the maximum concentration that may be achieved under given conditions when the dissolution process is at equilibrium. It is expressed by the symbol S. Unit of solubility is g/L.
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Solution
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Use retrosynthetic analysis to suggest two paths to synthesize 2-methyl-3-hexanol using the Grignard reaction. (Click and drag
the appropriate image to the correct position in the reactions.)
Route 1
Aldehyde 1
or
+98
Aldehyde 2
Route 2
Q6
+100
Solved in 1 attempt
Q7
+95
Solved in 2 attempts
Q8
+98
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possible
+
+
Grignard 1
OH
H3O+
Grignard 2
Answer Bank
Q9
+90
MgBr
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possible
CH3CH2CH2MgBr
Q10
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Q11
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?
+100
in 1 attempt
2-methyl-3-hexanol
CH3CH2MgBr
H
H
о
H
Attempt 3
2) (4 pt) After the reaction was completed, the student collected the following data. Crude
product data is the data collected after the reaction is finished, but before the product
is purified. "Pure" product data is the data collected after attempted purification using
recrystallization.
Student B's data:
Crude product data
"Pure"
product data
after
recrystallization
Crude mass: 0.93 g grey solid
Crude mp: 96-106 °C
Crude % yield:
Pure mass: 0.39 g white solid
Pure mp: 111-113 °C
Pure % yield:
a) Calculate the crude and pure percent yields for the student's reaction.
b) Summarize what is indicated by the crude and pure melting points.
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Chapter 19 Solutions
Loose Leaf for Chemistry: The Molecular Nature of Matter and Change