For the reaction `A+B hArr C+D` taking place in a 1 L vessel, equilibrium concentration of `[C]=[D]=0.5M` if we start with 1 mole each A and B. Percentage of A converted into C if we start with 2 moles of A and 1 mole of B, isA. `25%`B. `40%`C. `66.66%`D. `33.33%`

For the reaction `A+B hArr C+D` taking place in a 1 L vessel, equilibr

1.	For the reaction `A+B hArr C+D` taking place in a 1 L vessel, equilibrium concentration of `[C]=[D]=0.5M` if we start with 1 mole each A and B. Percentage of A converted into C if we start with 2 moles of A and 1 mole of B, isA. `25%`B. `40%`C. `66.66%`D. `33.33%`
Answer» Correct Answer - D `{:("Initial conc. ",A,+,B,hArr,C,+,D),("Eqm. conc.",(1-0.5)M,,(1-0.5)M,,0.5M,,0.5M):}` `[A]=[B]=[C]=[D]=0.5` `:. K=([C][D])/([A][B])` In second case, `{:(,A,+,B,hArr,C,+,D),("Initial eonc. ",2M,,1M,,,,),("Eqm. conc.",(2-x)M,,(1-x)M,,xM,,xM):}` `K=([C][D])/([A][B])` `:. (x^(2))/((2-x)(1-x))=1` `x^(2)=(2-x)(1-x)` `x^(2)=-2x-x+2+x^(2)` `:. x=(2)/(3)` `:. %` of A converted to `C=(x)/(2)xx100` `=(2xx100)/(3xx2)=33.33%`

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For the reaction `A+B hArr C+D` taking place in a 1 L vessel, equilibrium concentration of `[C]=[D]=0.5M` if we start with 1 mole each A and B. Percentage of A converted into C if we start with 2 moles of A and 1 mole of B, isA. `25%`B. `40%`C. `66.66%`D. `33.33%`

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