In a NEUTRAL solution, how does $[HO^-]$ compare to $[H_3O^+]$ ?

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Answer 1 · 2017-04-10T08:27:59

How do you think it compares...........?

In aqueous solution under standard conditions, the following equilibrium operates:

$2H_2OrightleftharpoonsH_3O^+ + HO^-$

At $298*K$ , the ion-product, $[H_3O^+][HO^-]=10^-14$ ,

we know that $[H_3O^+]=[HO^-]$ by specification (we have a neutral solution), and thus,

$[H_3O^+]=[HO^-]=sqrt(10^-14)*mol*L^-1=10^-7*mol*L^-1$ .

In a NEUTRAL solution, how does [HO^-][HO^-] compare to [H_3O^+][H_3O^+]?