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Question
Show that the half-life of zero order reaction is `t_(1/2) = ([A]_0)/(2k)`.
Numerical
Solution
Since we have, k = `([A]_0 - [A]_t)/t` ... (i)
At `t = t_(1/2), [A]_t = ([A]_0)/2`
Substituting in equation (i), we get
∴ k = `([A]_0 - ([A]_0)/2)/t_(1/2)`
∴ k = `((2[A]_0 - [A]_0)/2)/t_(1/2)`
= `[A]_0/(2.t_(1/2))`
∴ `t_(1/2) = [A]_0/(2k)`
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