The value of K sp for Hg 2 Br 2 at 25°C should be calculated if the cell potential of the following galvanic cell is 1.214 V: Hg (l) | Hg 2 Br 2 (s) |Br - (0 .10M)||MnO 4 - (0 .10M),Mn 2+ (0 .10M),H + (0 .10M)|Pt (s) Concept introduction: In the electrochemical cell, the reactions at cathode and anode occur due to the difference in their reduction electrode potential value. The EMF of the cell can be calculated with the help of electrode reduction potential values. The reaction at each electrode is called as half-reaction and the combination of both half-reactions gives the cell reaction of given electrochemical cell. The standard cell potential for an electrochemical cell can be calculated as: E cell ° = E cathode ° - E anode ° E cell ° = E reduction ° - E oxidation ° The potential of the cell can be calculated with the help of the Nernst equation that can be shown as: E° = E° cell - 0 .0592 V n log Q n = number of electrons Q = reaction quotient
The value of K sp for Hg 2 Br 2 at 25°C should be calculated if the cell potential of the following galvanic cell is 1.214 V: Hg (l) | Hg 2 Br 2 (s) |Br - (0 .10M)||MnO 4 - (0 .10M),Mn 2+ (0 .10M),H + (0 .10M)|Pt (s) Concept introduction: In the electrochemical cell, the reactions at cathode and anode occur due to the difference in their reduction electrode potential value. The EMF of the cell can be calculated with the help of electrode reduction potential values. The reaction at each electrode is called as half-reaction and the combination of both half-reactions gives the cell reaction of given electrochemical cell. The standard cell potential for an electrochemical cell can be calculated as: E cell ° = E cathode ° - E anode ° E cell ° = E reduction ° - E oxidation ° The potential of the cell can be calculated with the help of the Nernst equation that can be shown as: E° = E° cell - 0 .0592 V n log Q n = number of electrons Q = reaction quotient
Solution Summary: The author explains how the cell potential of a galvanic cell can be calculated with the help of electrode reduction potential values. The reaction at each electrode is called as half-reaction.
Definition Definition Study of chemical reactions that result in the production of electrical energy. Electrochemistry focuses particularly on how chemical energy is converted into electrical energy and vice-versa. This energy is used in various kinds of cells, batteries, and appliances. Most electrochemical reactions involve oxidation and reduction.
Chapter 19, Problem 19.116SP
Interpretation Introduction
Interpretation:
The value of Ksp for Hg2Br2 at 25°C should be calculated if the cell potential of the following galvanic cell is 1.214 V:
In the electrochemical cell, the reactions at cathode and anode occur due to the difference in their reduction electrode potential value. The EMF of the cell can be calculated with the help of electrode reduction potential values. The reaction at each electrode is called as half-reaction and the combination of both half-reactions gives the cell reaction of given electrochemical cell. The standard cell potential for an electrochemical cell can be calculated as: Ecell° = Ecathode° - Eanode°Ecell° = Ereduction° - Eoxidation°
The potential of the cell can be calculated with the help of the Nernst equation that can be shown as:
E° = E°cell - 0.0592 Vn log Q n = number of electronsQ = reaction quotient
Draw the missing intermediates 1 and 2, plus the final product 3, of this synthesis:
0
1. Eto
1. Eto-
1
2
2. MeBr
2. EtBr
H3O+
A
3
You can draw the three structures in any arrangement you like.
Explanation
Check
Click and drag to start drawing a structure.
Draw the missing intermediate 1 and final product 2 of this synthesis:
1. MeO-
H3O+
1
2
2. PrBr
Δ
You can draw the two structures in any arrangement you like.
Click and drag to start drawing a structure.
What is the differences between:
Glyceride and phosphoglyceride
Wax and Fat
Soap and Fatty acid
HDL and LDL cholesterol
Phospho lipids and sphingosine
What are the types of lipids?
What are the main lipid components of membrane structures?
How could lipids play important rules as signaling molecules and building units?
The structure variety of lipids makes them to play significant rules in our body, conclude breifly on this statement.
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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