The cell potential (EMF) of given voltaic cell should be calculated by using standard reduction potentials and effect of cell potential in given conditions should be explained. Concept introduction: Cell potential (EMF): The maximum potential difference between two electrodes of voltaic cell is known as cell potential. If standard reduction potentials of electrodes are given the cell potential (EMF) is given by, E cell = E cathode -E anode Where, E cathode is the reduction half cell potential E anode is the oxidation half cell potential
The cell potential (EMF) of given voltaic cell should be calculated by using standard reduction potentials and effect of cell potential in given conditions should be explained. Concept introduction: Cell potential (EMF): The maximum potential difference between two electrodes of voltaic cell is known as cell potential. If standard reduction potentials of electrodes are given the cell potential (EMF) is given by, E cell = E cathode -E anode Where, E cathode is the reduction half cell potential E anode is the oxidation half cell potential
Solution Summary: The author explains that the cell potential (EMF) of given voltaic cell should be calculated by using standard reduction potentials.
The cell potential (EMF) of given voltaic cell should be calculated by using standard reduction potentials and effect of cell potential in given conditions should be explained.
Concept introduction:
Cell potential (EMF):
The maximum potential difference between two electrodes of voltaic cell is known as cell potential.
If standard reduction potentials of electrodes are given the cell potential (EMF) is given by,
The cell potential (EMF) of given voltaic cell should be calculated by using standard reduction potentials and effect of cell potential in given conditions should be explained.
Concept introduction:
Cell potential (EMF):
The maximum potential difference between two electrodes of voltaic cell is known as cell potential.
If standard reduction potentials of electrodes are given the cell potential (EMF) is given by,
The cell potential (EMF) of given voltaic cell should be calculated by using standard reduction potentials and effect of cell potential in given conditions should be explained.
Concept introduction:
Cell potential (EMF):
The maximum potential difference between two electrodes of voltaic cell is known as cell potential.
If standard reduction potentials of electrodes are given the cell potential (EMF) is given by,
1600°
1538°C
1493°C
In the diagram, the letter L indicates
that it is a liquid. Indicate its
components in the upper region
where only L is indicated.
The
iron-iron carbide phase
diagram.
Temperature (°C)
1400
8
1394°C
y+L
1200
2.14
y, Austenite
10000
912°C
800a
0.76
0.022
600
400
(Fe)
a, Ferrite
Composition (at% C)
15
1147°C
a + Fe3C
2
3
Composition (wt% C)
L
2500
4.30
2000
y + Fe3C
727°C
1500
Cementite (Fe3C)
1000
4
5
6
6.70
Temperature (°F)
None
Part II. Given below are the 'H-NMR spectrum at 300 MHz in CDC13 and mass spectrum using electron ionization
of compound Brian. The FTIR of the said compound showed a strong peak at 1710 cm").
Determine the following:
(a) molecular Formula and Degree of unsaturation of compound Brian
(b) Basing on the given H-NMR spectrum tabulate the following (i) chemical shifts
(ii) integration, ciii) multiplicity and (iv) interferences made for each signal
(c) Draw the structure of compound Brian.
)
ΕΙ
43
41
27
71
114 (M+)
Hmmm
20
30
40
50 60
70
80
90 100 110 120
1H NMR spectrum
300 MHz in CDCl3
2.0
alle
1.0
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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
Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell