The value of Ka for nitrous acid (HNO2) at 25 °C is given in Appendix D. (b) By using the value of Ka, calculate ΔG° for the dissociation of nitrous acid in aqueous solution.
Ch.19 - Chemical Thermodynamics
Brown14th EditionChemistry: The Central ScienceISBN: 9780134414232Non è quello che usi tu?Cambia libro di testo
Capitolo 19, Problema 81b
Consider the decomposition of barium carbonate: BaCO3(s) ⇌ BaO(s) + CO2(g) Using data from Appendix C, calculate the equilibrium pressure of CO2 at (b) 1100 K.
Guida verificata passo dopo passo1
Identify the reaction: BaCO_3(s) \(\rightleftharpoons\) BaO(s) + CO_2(g).
Use the standard Gibbs free energy change equation: \(\Delta\) G^\(\circ\) = \(\Delta\) H^\(\circ\) - T\(\Delta\) S^\(\circ\).
Find \(\Delta\) H^\(\circ\) and \(\Delta\) S^\(\circ\) for the reaction using Appendix C data.
Calculate \(\Delta\) G^\(\circ\) at 1100 K using the values from the previous step.
Use the relationship \(\Delta\) G^\(\circ\) = -RT\(\ln\) K to find the equilibrium constant K, and then determine the equilibrium pressure of CO_2.

Risposta video verificata per un problema simile:
Questa soluzione video è stata consigliata dai nostri tutor come utile per risolvere questo problema.
Durata del video:
5mConcetti chiave
Ecco i concetti essenziali che devi comprendere per rispondere correttamente alla domanda.
Chemical Equilibrium
Chemical equilibrium occurs when the rates of the forward and reverse reactions are equal, resulting in constant concentrations of reactants and products. In the context of the decomposition of barium carbonate, the system reaches equilibrium when the amount of BaCO3 decomposing into BaO and CO2 is balanced by the amount of CO2 and BaO reverting back to BaCO3.
Video consigliato:
Percorso guidato
Chemical Equilibrium Concepts
Le Chatelier's Principle
Le Chatelier's Principle states that if a dynamic equilibrium is disturbed by changing the conditions, the system will adjust to counteract the change and restore a new equilibrium. In this case, increasing the temperature may shift the equilibrium position of the decomposition reaction, affecting the pressure of CO2 produced.
Video consigliato:
Percorso guidato
Le Chatelier's Principle
Equilibrium Constant (Kp)
The equilibrium constant (Kp) for a gaseous reaction is defined in terms of the partial pressures of the products and reactants at equilibrium. For the decomposition of barium carbonate, Kp can be expressed as the ratio of the partial pressure of CO2 to the concentration of BaCO3, allowing for the calculation of CO2 pressure at a given temperature, such as 1100 K.
Video consigliato:
Percorso guidato
Equilibrium Constant Expressions
Pratica correlata
Domanda del libro di testo
278
views
Domanda del libro di testo
Consider the decomposition of barium carbonate: BaCO3(s) ⇌ BaO(s) + CO2(g) Using data from Appendix C, calculate the equilibrium pressure of CO2 at (a) 298 K.
1184
views
2
rank
Domanda del libro di testo
The value of Ka for nitrous acid (HNO2) at 25 °C is given in Appendix D. (a) Write the chemical equation for the equilibrium that corresponds to Ka.
573
views
Domanda del libro di testo
Using data from Appendix C, write the equilibrium-constant expression and calculate the value of the equilibrium constant and the free-energy change for these reactions at 298 K: (a) NaHCO3(s) ⇌ NaOH(s) + CO2(g)
1056
views
Domanda del libro di testo
Consider the reaction PbCO3(s) ⇌ PbO(s) + CO2(g) Using data in Appendix C, calculate the equilibrium pressure of CO2 in the system at (a) 400 °C (b) 180 °C.
1209
views
1
rank
