For the following given reaction, the standard equilibrium K p value has to be calculated at 25 o C . I 2 ( g ) + C l 2 ( g ) ⇌ 2 I C l ( g ) Concept introduction: Free energy change ΔG : change in the free energy takes place while reactants convert to product where both are in standard state. It depends on the equilibrium constant K ΔG = ΔG o + RT ln ( K ) ΔG o = ΔH o − TΔS o Where, T is the temperature ΔG is the free energy ΔG o , ΔH o and ΔS o is standard free energy, enthalpy and entropy values. Free energy (Gibbs free energy) is the term that is used to explain the total energy content in a thermodynamic system that can be converted into work. The free energy is represented by the letter G . All spontaneous process is associated with the decrease of free energy in the system. The standard free energy change (ΔG ° rxn ) is the difference in free energy of the reactants and products in their standard state. ΔG ° rxn = ∑ mΔG f ° (Products)- ∑ nΔG f ° (Reactants) Where, nΔG f ° ( Reactants ) is the standard entropy of the reactants mΔG f ° ( products ) is the standard free energy of the products
For the following given reaction, the standard equilibrium K p value has to be calculated at 25 o C . I 2 ( g ) + C l 2 ( g ) ⇌ 2 I C l ( g ) Concept introduction: Free energy change ΔG : change in the free energy takes place while reactants convert to product where both are in standard state. It depends on the equilibrium constant K ΔG = ΔG o + RT ln ( K ) ΔG o = ΔH o − TΔS o Where, T is the temperature ΔG is the free energy ΔG o , ΔH o and ΔS o is standard free energy, enthalpy and entropy values. Free energy (Gibbs free energy) is the term that is used to explain the total energy content in a thermodynamic system that can be converted into work. The free energy is represented by the letter G . All spontaneous process is associated with the decrease of free energy in the system. The standard free energy change (ΔG ° rxn ) is the difference in free energy of the reactants and products in their standard state. ΔG ° rxn = ∑ mΔG f ° (Products)- ∑ nΔG f ° (Reactants) Where, nΔG f ° ( Reactants ) is the standard entropy of the reactants mΔG f ° ( products ) is the standard free energy of the products
For the following given reaction, the standard equilibrium Kp value has to be calculated at 25oC.
I2(g)+Cl2(g)⇌2ICl(g)
Concept introduction:
Free energy changeΔG: change in the free energy takes place while reactants convert to product where both are in standard state. It depends on the equilibrium constant K
ΔG =ΔGo+RTln(K)ΔGo=ΔHo−TΔSo
Where,
T is the temperature
ΔG is the free energy
ΔGo, ΔHo and ΔSo is standard free energy, enthalpy and entropy values.
Free energy (Gibbs free energy) is the term that is used to explain the total energy content in a thermodynamic system that can be converted into work. The free energy is represented by the letter G. All spontaneous process is associated with the decrease of free energy in the system. The standard free energy change (ΔG°rxn) is the difference in free energy of the reactants and products in their standard state.
ΔG°rxn=∑mΔGf°(Products)-∑nΔGf°(Reactants)
Where,
nΔGf°(Reactants) is the standard entropy of the reactants
mΔGf°(products) is the standard free energy of the products
At an electrified interface according to the Gouy-Chapman model, what types of interactions do NOT occur between the ions and the solvent according to this theory?
Please predict the products for each of the
following reactions.
Clearly show the regiochemistry (Markovnikov
vs anti-Markovnikov) and stereochemistry
(syn- vs anti- or both).
If a mixture of enantiomers is formed, please
draw all the enantiomers.
Hint: In this case you must choose the best
answer to demonstrate the stereochemistry of
H2 addition.
1.03
2. (CH3)2S
BIZ
CH₂OH
2. DMS
KMnO4, NaOH
ΖΗ
Pd or Pt (catalyst)
HBr
20 1
HBr
ROOR (peroxide)
HO
H-SO
HC
12 11 10
BH, THE
2. H2O2, NaOH
Brz
cold
HI
19
18
17
16
MCPBA
15
14
13
A
Br
H₂O
BH3⚫THF
Brz
EtOH
Pd or Ni (catalyst)
D₂ (deuterium)
1. Os04
2. H2O2
CH3CO3H
(peroxyacid)
1. MCPBA
2. H₂O*
H
B
+
H
H
H
"H
C
H
H
D
Explain how Beer’s Law can be used to determine the concentration in a selected food sample. Provide examples.
Chapter 20 Solutions
ALEKS 360 for Silberberg Chemistry: The Molecular Nature of Matter and Change
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.
The Laws of Thermodynamics, Entropy, and Gibbs Free Energy; Author: Professor Dave Explains;https://www.youtube.com/watch?v=8N1BxHgsoOw;License: Standard YouTube License, CC-BY