For the hydrolysis of ATP, the equilibrium constant K should be founded at 298 K . Concept introduction: Adenosine triphosphate ATP: The main job of ATP is to store energy and release it when cell is in need of energy. Free energy change ΔG : change in the free energy takes place while reactant converts to product where both are in standard state. It depends on the equilibrium constant K , ΔG = ΔG o + RT ln ( K ) ( o r ) ΔG o = − RT ln ( K ) Where, T is the temperature ΔG is the free energy ΔG 0 is standard free energy values.
For the hydrolysis of ATP, the equilibrium constant K should be founded at 298 K . Concept introduction: Adenosine triphosphate ATP: The main job of ATP is to store energy and release it when cell is in need of energy. Free energy change ΔG : change in the free energy takes place while reactant converts to product where both are in standard state. It depends on the equilibrium constant K , ΔG = ΔG o + RT ln ( K ) ( o r ) ΔG o = − RT ln ( K ) Where, T is the temperature ΔG is the free energy ΔG 0 is standard free energy values.
Definition Definition State where the components involved in a reversible reaction, namely reactants and product, do not change concentration any further with time. Chemical equilibrium results when the rate of the forward reaction becomes equal to the rate of the reverse reaction.
Chapter 20, Problem 20.99P
(a)
Interpretation Introduction
Interpretation:
For the hydrolysis of ATP, the equilibrium constant K should be founded at 298K.
Concept introduction:
Adenosine triphosphate ATP: The main job of ATP is to store energy and release it when cell is in need of energy.
Free energy changeΔG: change in the free energy takes place while reactant converts to product where both are in standard state. It depends on the equilibrium constant K,
ΔG =ΔGo+RTln(K)(or)ΔGo=−RTln(K)
Where,
T is the temperature
ΔG is the free energy
ΔG0 is standard free energy values.
(b)
Interpretation Introduction
Interpretation:
For the dehydration condensation to from glucose phosphate, the equilibrium constant K should be calculated at 298K.
Concept introduction:
Free energy change: The free energy change of a reaction is given by the subtraction of free energy changes of reactants from free energy changes of reactants.
ΔG=∑nΔGf°(products)-∑mΔGf°(reactants)
Free energy changeΔG: change in the free energy takes place while reactant converts to product where both are in standard state. It depends on the equilibrium constant K
ΔG =ΔGo+RTln(K)(or)ΔGo=−RTln(K)
Where,
T is the temperature
ΔG is the free energy
ΔG0 is standard free energy values.
(c)
Interpretation Introduction
Interpretation:
For the coupled reaction between ATP and glucose chemical equilibrium constant K should be calculated at 298K.
Concept introduction:
Free energy change: The free energy change of a reaction is given by the subtraction of free energy changes of reactants from free energy changes of reactants.
ΔG=∑nΔGf°(products)-∑mΔGf°(reactants)
Free energy changeΔG: change in the free energy takes place while reactant converts to product where both are in standard state. It depends on the equilibrium constant K
ΔG =ΔGo+RTln(K)(or)ΔGo=−RTln(K)
Where,
T is the temperature
ΔG is the free energy
ΔG0 is standard free energy values.
(d)
Interpretation Introduction
Interpretation:
Identify the change in K when T changes from 20oCto37oC in each cases a,b and c
Concept introduction:
Free energy change: The free energy change of a reaction is given by the subtraction of free energy changes of reactants from free energy changes of reactants.
ΔG=∑nΔGf°(products)-∑mΔGf°(reactants)
Free energy changeΔG: change in the free energy takes place while reactant converts to product where both are in standard state. It depends on the equilibrium constant K
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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