At 500 K in the presence of a copper surface, ethanol decomposes according to the equation C 2 H 5 OH ( g ) → CH 3 CHO ( g ) + H 2 ( g ) The pressure of C 2 H 5 OH was measured as a function of time and the following data were obtained: Time(s) P C 2 H 5 OH ( torr ) 0 250. 100. 237 200. 224 300. 211 400. 198 500. 185 Since the pressure of a gas is directly proportional to the concentration of gas, we can express the rate law for a gaseous reaction in terms of partial pressures. Using the above data, deduce the rate law, the integrated rate law, and the value of the rate constant, all in terms of pressure units in atm and time in seconds. Predict the pressure of C 2 H 5 OH after 900. s from the start of the reaction. ( Hint: To determine the order of the reaction with respect to C 2 H 5 OH, compare how the pressure of C 2 H 5 OH decreases with each time listing.)
At 500 K in the presence of a copper surface, ethanol decomposes according to the equation C 2 H 5 OH ( g ) → CH 3 CHO ( g ) + H 2 ( g ) The pressure of C 2 H 5 OH was measured as a function of time and the following data were obtained: Time(s) P C 2 H 5 OH ( torr ) 0 250. 100. 237 200. 224 300. 211 400. 198 500. 185 Since the pressure of a gas is directly proportional to the concentration of gas, we can express the rate law for a gaseous reaction in terms of partial pressures. Using the above data, deduce the rate law, the integrated rate law, and the value of the rate constant, all in terms of pressure units in atm and time in seconds. Predict the pressure of C 2 H 5 OH after 900. s from the start of the reaction. ( Hint: To determine the order of the reaction with respect to C 2 H 5 OH, compare how the pressure of C 2 H 5 OH decreases with each time listing.)
Solution Summary: The author explains how the differential rate law provides the rate of a reaction at specific reaction concentrations.
At 500 K in the presence of a copper surface, ethanol decomposes according to the equation
C
2
H
5
OH
(
g
)
→
CH
3
CHO
(
g
)
+
H
2
(
g
)
The pressure of C2H5OH was measured as a function of time and the following data were obtained:
Time(s)
P
C
2
H
5
OH
(
torr
)
0
250.
100.
237
200.
224
300.
211
400.
198
500.
185
Since the pressure of a gas is directly proportional to the concentration of gas, we can express the rate law for a gaseous reaction in terms of partial pressures. Using the above data, deduce the rate law, the integrated rate law, and the value of the rate constant, all in terms of pressure units in atm and time in seconds. Predict the pressure of C2H5OH after 900. s from the start of the reaction. (Hint: To determine the order of the reaction with respect to C2H5OH, compare how the pressure of C2H5OH decreases with each time listing.)
Relative Intensity
Part VI. consider the multi-step reaction below for compounds A, B, and C.
These compounds were subjected to mass spectrometric analysis and
the following spectra for A, B, and C was obtained.
Draw the structure of B and C and match all three compounds
to the correct spectra.
Relative Intensity
Relative Intensity
20
NaоH
0103
Br
(B)
H2504
→ (c)
(A)
100-
MS-NU-0547
80
40
20
31
10
20
100-
MS2016-05353CM
80
60
100
MS-NJ-09-3
80
60
40
20
45
J.L
80
S1
84
M+
absent
राग
135 137
S2
62
164 166
11
S3
25
50
75
100
125
150
175
m/z
Don't used hand raiting and don't used Ai solution
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