The `K_(p)` value for the reaction. `H_(2) +I_(2) hArr 2Hi` at `460^(@)C` is 49. If the initial pressure of `H_(2) " and " I_(2)` is 0.5 atm respectively , what will be the partial pressure of `H_(2)` at equilibrium ?A. `0.111` atmB. `0.123` atmC. `0.133` atmD. `0.222` atm

The `K_(p)` value for the reaction. `H_(2) +I_(2) hArr 2Hi` at `460^(@

1.	The `K_(p)` value for the reaction. `H_(2) +I_(2) hArr 2Hi` at `460^(@)C` is 49. If the initial pressure of `H_(2) " and " I_(2)` is 0.5 atm respectively , what will be the partial pressure of `H_(2)` at equilibrium ?A. `0.111` atmB. `0.123` atmC. `0.133` atmD. `0.222` atm
Answer» Correct Answer - A `{:(,H_(2) (g) ,+, I_(2) ,hArr, 2HI(g)),("Initial (atm)",0.5,,0.5,,0),("pressure",,,,,),("Final (atm)",0.5-x,,0.5-x,,2X),("pressure",,,,,):}` `K_(p) =((pHI)^(2))/((pH_(2))(pI_(2)))` `49 = ((2X)^(2))/((0.5-X)^(2)) " or " 7 =(2X)/((0.5 -X))` `3.5 xx -7X =2X " or " X =(3.5)/(9) =0.389` `pH_(2)` at eqm. =(0.5 - 0.389) = 0.111

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The `K_(p)` value for the reaction. `H_(2) +I_(2) hArr 2Hi` at `460^(@)C` is 49. If the initial pressure of `H_(2) " and " I_(2)` is 0.5 atm respectively , what will be the partial pressure of `H_(2)` at equilibrium ?A. `0.111` atmB. `0.123` atmC. `0.133` atmD. `0.222` atm

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