For magnesite decomposition the balanced equation has to be written. Concept introduction: Balanced equation: A balanced chemical equation is an equation which contains same elements in same number on both the sides (reactant and product side) of the chemical equation thereby obeying the law of conservation of mass. The equation for a reaction, which has same number of atoms and charge of the ions in both reactants and product sides, is known as balanced equation. Reactant: In a chemical reaction the species that present at left is denoted as reactant which undergoes chemical change and result to given new species called product. Product: In a chemical reaction the species that present in right side is denoted as product that results from the reactant.
For magnesite decomposition the balanced equation has to be written. Concept introduction: Balanced equation: A balanced chemical equation is an equation which contains same elements in same number on both the sides (reactant and product side) of the chemical equation thereby obeying the law of conservation of mass. The equation for a reaction, which has same number of atoms and charge of the ions in both reactants and product sides, is known as balanced equation. Reactant: In a chemical reaction the species that present at left is denoted as reactant which undergoes chemical change and result to given new species called product. Product: In a chemical reaction the species that present in right side is denoted as product that results from the reactant.
Definition Definition Transformation of a chemical species into another chemical species. A chemical reaction consists of breaking existing bonds and forming new ones by changing the position of electrons. These reactions are best explained using a chemical equation.
Chapter 20, Problem 20.91P
(a)
Interpretation Introduction
Interpretation:
For magnesite decomposition the balanced equation has to be written.
Concept introduction:
Balanced equation: A balanced chemical equation is an equation which contains same elements in same number on both the sides (reactant and product side) of the chemical equation thereby obeying the law of conservation of mass.
The equation for a reaction, which has same number of atoms and charge of the ions in both reactants and product sides, is known as balanced equation.
Reactant: In a chemical reaction the species that present at left is denoted as reactant which undergoes chemical change and result to given new species called product.
Product: In a chemical reaction the species that present in right side is denoted as product that results from the reactant.
(b)
Interpretation Introduction
Interpretation:
For the given decomposition reaction the free energy ΔGo value has to be calculated at 298K using the enthalpy and entropy values.
Concept introduction:
Free energy (or) entropy change 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 processes are associated with the decrease of free energy in the system. The equation given below helps us to calculate the change in free energy in a system.
ΔGo = ΔΗo- TΔSo
Where,
ΔGo is the standard change in free energy of the system
ΔΗo is the standard change in enthalpy of the system
T is the absolute value of the temperature
ΔSo is the change in entropy in the system
(c)
Interpretation Introduction
Interpretation:
The minimum temperature at which the given reaction is spontaneous has to be identified.
Concept introduction:
Free energy (or) entropy change 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 equation given below helps us to calculate the change in free energy in a system.
ΔGo = ΔΗo- TΔSo
Where,
ΔGo is the standard change in free energy of the system
ΔΗo is the standard change in enthalpy of the system
T is the absolute value of the temperature
ΔSo is the change in entropy in the system
(d)
Interpretation Introduction
Interpretation:
For the MgCO3 decomposition reaction, the equilibrium constant PCO2 value has to be calculated at 298K.
Concept introduction:
Free energy (or) entropy change 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 equation given below helps us to calculate the change in free energy in a system.
ΔGo = ΔΗo- TΔSo
Where,
ΔGo is the standard change in free energy of the system
ΔΗo is the standard change in enthalpy of the system
T is the absolute value of the temperature
ΔSo is the change in entropy in the system
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 =ΔG0+RTln(K)ΔG0=ΔH0−TΔS0
Where,
T is the temperature
ΔG is the free energy
ΔG0, ΔH0 and ΔS0 is standard free energy, enthalpy and entropy values.
(e)
Interpretation Introduction
Interpretation:
For the following MgCO3 decomposition reaction, the equilibrium constant PCO2 value has to be calculated at 1200K.
Concept introduction:
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=∑nΔGf°(Products)-∑nΔGf°(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 =ΔG0+RTln(K)ΔG0=ΔH0−TΔS0
Where,
T is the temperature
ΔG is the free energy
ΔG0, ΔH0 and ΔS0 is standard free energy, enthalpy and entropy values.
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