Nanotechnology has become an important field, with applications ranging from high-density data storage to the design of “nano machines.” One common building block of nanostructured architectures is manganese oxide nanoparticles. The particles can be formed from manganese oxalate nanorods, the formation of which can be described as follows: Mn 2+ ( a q ) + C 2 O 4 2 − ( a q ) ⇌ M n C 2 O 4 ( a q ) K 1 = 7.9 × 10 3 MnC 2 O 4 ( a q ) + C 2 O 4 2 − ( a q ) ⇌ M n ( C 2 O 4 ) 2 2 − ( a q ) K 2 = 7.9 × 10 1 Calculate the value for the overall formation constant for Mn(C 2 O 4 ) 2 2− : K = [ Mn(C 2 O 4 ) 2 2- ] [ Mn 2+ ][C 2 O 4 2- ] 2
Nanotechnology has become an important field, with applications ranging from high-density data storage to the design of “nano machines.” One common building block of nanostructured architectures is manganese oxide nanoparticles. The particles can be formed from manganese oxalate nanorods, the formation of which can be described as follows: Mn 2+ ( a q ) + C 2 O 4 2 − ( a q ) ⇌ M n C 2 O 4 ( a q ) K 1 = 7.9 × 10 3 MnC 2 O 4 ( a q ) + C 2 O 4 2 − ( a q ) ⇌ M n ( C 2 O 4 ) 2 2 − ( a q ) K 2 = 7.9 × 10 1 Calculate the value for the overall formation constant for Mn(C 2 O 4 ) 2 2− : K = [ Mn(C 2 O 4 ) 2 2- ] [ Mn 2+ ][C 2 O 4 2- ] 2
Solution Summary: The author analyzes the reaction corresponding to the formation of manganese oxide nanoparticles. The value for the overall formation constant for Mnleft is calculated by the formula.
Nanotechnology has become an important field, with applications ranging from high-density data storage to the design of “nano machines.” One common building block of nanostructured architectures is manganese oxide nanoparticles. The particles can be formed from manganese oxalate nanorods, the formation of which can be described as follows:
Mn
2+
(
a
q
)
+
C
2
O
4
2
−
(
a
q
)
⇌
M
n
C
2
O
4
(
a
q
)
K
1
=
7.9
×
10
3
MnC
2
O
4
(
a
q
)
+
C
2
O
4
2
−
(
a
q
)
⇌
M
n
(
C
2
O
4
)
2
2
−
(
a
q
)
K
2
=
7.9
×
10
1
Calculate the value for the overall formation constant for Mn(C2O4)22−:
K
=
[
Mn(C
2
O
4
)
2
2-
]
[
Mn
2+
][C
2
O
4
2-
]
2
What impact would adding twice as much Na2CO3 than required for stoichiometric quantities have on the quantity of product produced? Initial results attached
Given that a theoretical yield for isolating Calcium Carbonate in this experiment would be 100%. From that information and based on the results you obtained in this experiment, describe your success in the recovery of calcium carbonate and suggest two possible sources of error that would have caused you to not obtain 100% yield.
Results are attached form experiment
5) Calculate the flux of oxygen between the ocean and the atmosphere(2 pts), given that:
(from Box 5.1, pg. 88 of your text):
Temp = 18°C
Salinity = 35 ppt
Density = 1025 kg/m3
Oxygen concentration measured in bulk water = 263.84 mmol/m3
Wind speed = 7.4 m/s
Oxygen is observed to be about 10% initially supersaturated
What is flux if the temperature is 10°C ? (2 pts) (Hint: use the same density in your calculations). Why do your calculated values make sense (or not) based on what you know about the relationship between gas solubility and temperature (1 pt)?
General, Organic, and Biological Chemistry - 4th edition
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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