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The ion product of water: varies with pH is only applicable to neutral water remains constant regardless of the pH ranges between 1.0 and 10-14 Help please this the last question and it determines if I pass or not D: Please Help..
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@timo86m help if you can please
The equation for self-ionization of water: \[\LARGE K_{W}=\left[ H ^{+} \right] ~ \left[ OH ^{-} \right]=1.0*10^{-14}\] Kw is a constant, but temperature dependent and last equal sign is true at 25 °C. H+ and OH- are variables. What state is true based upon that equation?
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