The rate for the decomposition of `NH_(3)` on platinum surface is zero order. What are the rate of production of `N_(2)` and `H_(2)` if `K = 2.5 xx 10^(-4) "mol litre"^(-1)s^(-1)`?

The rate for the decomposition of `NH_(3)` on platinum surface is zero

1.	The rate for the decomposition of `NH_(3)` on platinum surface is zero order. What are the rate of production of `N_(2)` and `H_(2)` if `K = 2.5 xx 10^(-4) "mol litre"^(-1)s^(-1)`?
Answer» The decomposition of `NH_(3)` on platinum surface is represented by the following equation . `2 NH_(3 (g)) overset("Pt")(to) N_(2 (g)) + 3 H_(2 (g))` Therefore , Rate = `-(1)/(2) (d[NH_(3)])/("dt") = (d [N_(2)])/("dt") = (1)/(3) (d [H_(2)])/("dt") = k` `= 2.5 xx 10^(-4) "mol" L^(-1) s^(-1)` Therefore , the rate of production of `N_(2)` is `(d [N_(2)])/("dt") = 2.5 xx 10^(-4) "mol" L^(-1) s^(-1)` And , the rate of production of `H_(2)` is `(d [H_(2)])/("dt") = 3 xx 2.5 xx 10^(-4) "mol" L^(-1) s^(-1)` = `7.5 xx 10^(-4) "mol" L^(-1) s^(-1)`

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The rate for the decomposition of `NH_(3)` on platinum surface is zero order. What are the rate of production of `N_(2)` and `H_(2)` if `K = 2.5 xx 10^(-4) "mol litre"^(-1)s^(-1)`?

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