Enter your answer in the provided box. Hydrogen sulfide decomposes according to the following reaction, for which K = 9.30 × 108 at 700°C: 2 H2S(g) 2 H2(g) + S2(g) If 0.57 mol of H2S is placed in a 3.0–L container, what is the equilibrium concentration of H2(g) at 700° C? M

Chemistry for Engineering Students
4th Edition
ISBN:9781337398909
Author:Lawrence S. Brown, Tom Holme
Publisher:Lawrence S. Brown, Tom Holme
Chapter12: Chemical Equilibrium
Section: Chapter Questions
Problem 12.103PAE: 12.103 Methanol, CH3OH, can be produced by the reaction of CO with H2, with the liberation of heat....
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Enter your answer in the provided box.
Hydrogen sulfide decomposes according to the following reaction, for which
K = 9.30 × 108 at 700°C:
2 H2S(g) 2 H2(g) + S2(g)
If 0.57 mol of H2S is placed in a 3.0–L container, what is the equilibrium concentration of H2(g) at 700°
C?
M
Transcribed Image Text:Enter your answer in the provided box. Hydrogen sulfide decomposes according to the following reaction, for which K = 9.30 × 108 at 700°C: 2 H2S(g) 2 H2(g) + S2(g) If 0.57 mol of H2S is placed in a 3.0–L container, what is the equilibrium concentration of H2(g) at 700° C? M
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