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X(2) + X^(-) hArr X(3)^(-) (x = iodine) ...

`X_(2) + X^(-) hArr X_(3)^(-)` (x = iodine) This reaction is set up in aqueous medium. We start with 1 mol of `X_(2)` and 0.5 mol of `X^(-)` in 1L flask. After equilibrium is reached, excess of `AgNO_(3)` gave 0.25 mol of yellow ppt. equilibrium constant is

A

1.33

B

2.66

C

`2.00`

D

`3.00`

Text Solution

Verified by Experts

The correct Answer is:
A
`{:(X_(2), +,X^(-), hArr, X_(3)^(-)), (1,, 0.5,,0),((1-x),,(0.5-x),,x):}`
`(0.5-x)`= unreacted `X^(-)`
`0.5 -x = 0.25 , x = 0.25 `
`K_(c ) = ([X_(3)^(-)])/([X_(2)][X^(-)])=(0.25)/(0.75 xx 0.25) = 1.33`
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