NH4HS decomposes according to the following reaction, with an equilibrium constant K of 0.11 to 298 K : NHẠHS(s) 5 NH3(8) + H2S(g) (1) In the same 1L flask, 0.01 mol of NH4HS solid at 298K is introduced. Compute the partial pressures of each gas and the total pressure in the flask when the system is no longer evolving.

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NH4HS decomposes according to the following reaction, with an equilibrium constant K of 0.11 to 298 K :
NH4HS(s) 5 NH3(g) + H2S(g)
(1)
In the same 1L flask, 0.01 mol of NH4HS solid at 298K is introduced.
Compute the partial pressures of each gas and the total pressure in the flask when the system is no
longer evolving.
Transcribed Image Text:NH4HS decomposes according to the following reaction, with an equilibrium constant K of 0.11 to 298 K : NH4HS(s) 5 NH3(g) + H2S(g) (1) In the same 1L flask, 0.01 mol of NH4HS solid at 298K is introduced. Compute the partial pressures of each gas and the total pressure in the flask when the system is no longer evolving.
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