In give pH , spontaneity of given reaction 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 Nernst equation: The relationship between standard cell potential and cell potential at non standard conditions and the reaction quotient are given by Nernst equation it is, E cell = E° cell - 0.0592 n logQ Where, E cell is cell potential E° cell is standard cell potential Q is reaction quotient n isnumber of electrons pH : Ph of the solution is nothing but the concentration of Hydrogen ion in given solution in given condition and it is given by negative logarithm of base ten Hydrogen ion concentration. pH=-log[H + ]
In give pH , spontaneity of given reaction 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 Nernst equation: The relationship between standard cell potential and cell potential at non standard conditions and the reaction quotient are given by Nernst equation it is, E cell = E° cell - 0.0592 n logQ Where, E cell is cell potential E° cell is standard cell potential Q is reaction quotient n isnumber of electrons pH : Ph of the solution is nothing but the concentration of Hydrogen ion in given solution in given condition and it is given by negative logarithm of base ten Hydrogen ion concentration. pH=-log[H + ]
Solution Summary: The author explains that cell potential is the maximum potential difference between two electrodes of voltaic cell. The reaction quotient is given by Nernst equation.
The relationship between standard cell potential and cell potential at non standard conditions and the reaction quotient are given by Nernst equation it is,
Ph of the solution is nothing but the concentration of Hydrogen ion in given solution in given condition and it is given by negative logarithm of base ten Hydrogen ion concentration.
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Problem 38 of 15
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Curved arrows are used to illustrate the flow of electrons. Use the reaction conditions provided and follow
the arrows to draw the product formed in this reaction or mechanistic step(s).
Include all lone pairs and charges as appropriate. Ignore inorganic byproducts.
Br2
FeBrз
H
(+)
Br:
H
: Br----FeBr3
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a
SU
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nd
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Under aqueous acidic conditions, nitriles will react to form a neutral organic intermediate 1 that has an N atom in it first, and then they will continue to react to
form the final product 2:
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P
Draw the missing intermediate 1 and the final product 2 in the box below. You can draw the two structures in any arrangement you like.
CN
H₂O
H₂O
H+
H+
Click and drag to start drawing a
structure.
Х
Organic bases have lone pairs of electrons that are capable of accepting protons. Lone pair electrons in a neutral or negatively charged species, or pi electron pairs. Explain the latter case (pi electron pairs).
Chapter 19 Solutions
Student Solutions Manual for Ebbing/Gammon's General Chemistry, 11th
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