From the given concentration of H 3 O + ion in aqueous solution at 25 ° C , the concentration of OH - has to be calculated. Concept Introduction: Autoionization of water is the reaction in which the water undergoes ionization to give a proton and a hydroxide ion. Water is a very weak electrolyte and hence it does not completely dissociate into the ions. The ionization happens to a very less extent only. The ionization of water is an equilibrium reaction and hence this has equilibrium rate constant. K w = [ H 3 O + ] [ OH − ] = 1.0 × 10 − 14
From the given concentration of H 3 O + ion in aqueous solution at 25 ° C , the concentration of OH - has to be calculated. Concept Introduction: Autoionization of water is the reaction in which the water undergoes ionization to give a proton and a hydroxide ion. Water is a very weak electrolyte and hence it does not completely dissociate into the ions. The ionization happens to a very less extent only. The ionization of water is an equilibrium reaction and hence this has equilibrium rate constant. K w = [ H 3 O + ] [ OH − ] = 1.0 × 10 − 14
Interpretation: From the given concentration of
H3O+ ion in aqueous solution at
25 °C, the concentration of
OH- has to be calculated.
Concept Introduction:
Autoionization of water is the reaction in which the water undergoes ionization to give a proton and a hydroxide ion. Water is a very weak electrolyte and hence it does not completely dissociate into the ions. The ionization happens to a very less extent only. The ionization of water is an equilibrium reaction and hence this has equilibrium rate constant.
Kw=[H3O+][OH−]=1.0×10−14
(a)
Expert Solution
Answer to Problem 16.18QP
Answer
The concentration of
OH- in (a) is
8.8×10−11M
Explanation of Solution
Given
Concentration of
H3O+ =
1.13×10−4M
Formula
Kw=[H3O+][OH−]=1.0×10−14[OH−]=1.0×10−14[H3O+]
Where,
[OH-] is concentration of
OH-
[H3O+] is concentration of
H3O+
Substitute the given concentration of
H3O+ in the above formula,
[OH−]=1.0×10−141.13×10−4=8.8×10−11M
Thus the concentration of
OH- is
8.8×10−11M
(b)
Interpretation Introduction
Interpretation: From the given concentration of
H3O+ ion in aqueous solution at
25 °C, the concentration of
OH- has to be calculated.
Concept Introduction:
Autoionization of water is the reaction in which the water undergoes ionization to give a proton and a hydroxide ion. Water is a very weak electrolyte and hence it does not completely dissociate into the ions. The ionization happens to a very less extent only. The ionization of water is an equilibrium reaction and hence this has equilibrium rate constant.
Kw=[H3O+][OH−]=1.0×10−14
(b)
Expert Solution
Answer to Problem 16.18QP
Answer
The concentration of
OH- in (b) is
2.2×10−7M
Explanation of Solution
Given
Concentration of
H3O+ =
4.55×10−8M
Formula
Kw=[H3O+][OH−]=1.0×10−14[OH−]=1.0×10−14[H3O+]
Where,
[OH-] is concentration of
OH-
[H3O+] is concentration of
H3O+
Substitute the given concentration of
H3O+ in the above formula,
[OH−]=1.0×10−144.55×10−8=2.2×10−7M
Thus the concentration of
OH- is
2.2×10−7M
(c)
Interpretation Introduction
Interpretation: From the given concentration of
H3O+ ion in aqueous solution at
25 °C, the concentration of
OH- has to be calculated.
Concept Introduction:
Autoionization of water is the reaction in which the water undergoes ionization to give a proton and a hydroxide ion. Water is a very weak electrolyte and hence it does not completely dissociate into the ions. The ionization happens to a very less extent only. The ionization of water is an equilibrium reaction and hence this has equilibrium rate constant.
Kw=[H3O+][OH−]=1.0×10−14
(c)
Expert Solution
Answer to Problem 16.18QP
Answer
The concentration of
OH- in (c) is
1.4×10−4M
Explanation of Solution
Given
Concentration of
H3O+ =
7.05×10−11M
Formula
Kw=[H3O+][OH−]=1.0×10−14[OH−]=1.0×10−14[H3O+]
Where,
[OH-] is concentration of
OH-
[H3O+] is concentration of
H3O+
Substitute the given concentration of
H3O+ in the above formula,
[OH−]=1.0×10−147.05×10−11=1.4×10−4M
Thus the concentration of
OH- is
1.4×10−4M
(d)
Interpretation Introduction
Interpretation: From the given concentration of
H3O+ ion in aqueous solution at
25 °C, the concentration of
OH- has to be calculated.
Concept Introduction:
Autoionization of water is the reaction in which the water undergoes ionization to give a proton and a hydroxide ion. Water is a very weak electrolyte and hence it does not completely dissociate into the ions. The ionization happens to a very less extent only. The ionization of water is an equilibrium reaction and hence this has equilibrium rate constant.
Kw=[H3O+][OH−]=1.0×10−14
(d)
Expert Solution
Answer to Problem 16.18QP
Answer
The concentration of
OH- in (d) is
3.2×10−13M
Explanation of Solution
Given
Concentration of
H3O+ =
3.13×10−2M
Formula
Kw=[H3O+][OH−]=1.0×10−14[OH−]=1.0×10−14[H3O+]
Where,
[OH-] is concentration of
OH-
[H3O+] is concentration of
H3O+
Substitute the given concentration of
H3O+ in the above formula,
[OH−]=1.0×10−143.13×10−2=3.2×10−13M
Thus the concentration of
OH- is
3.2×10−13M
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Which of the m/z values corresponds to the base peak in the mass spectrum shown?
100
80
A. 45
B. 44
C. 29
D. 15
Intensity
20
0
10 20
30 40
B-
m/z
-8
50
E. 30
Which of the m/z values correspond to the molecular ion for the compound shown?
A. 18
B. 82
OH
C. 100
D. 102
E. 103
Can someone help me with drawing my arrows.
Chapter 16 Solutions
GEN COMBO CHEMISTRY: ATOMS FIRST; ALEKS 360 2S ACCESS CARD CHEMISTRY:ATOMS FIRST
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Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell