If $25cm^3$ of $1.0molL^-1$ nitric acid are reacted with. $50cm^3$ $0.5molL^-1$ $NaOH$ what is the $pH$ ?

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If $25cm^3$ of $1.0molL^-1$ nitric acid are reacted with. $50cm^3$ $0.5molL^-1$ $NaOH$ what is the $pH$ ?

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Answer 1 · 2017-03-29T15:35:12

$pH=7$

Explanation:

We interrogate the following acid-base reaction:

$HNO_3(aq) + KOH(aq) rarr KNO_3(aq) + H_2O$ .

We use the old faithful formula:

$"Concentration"$ $-=$ $"Moles of solute"/"Volume of solution"$ ,

So with respect to nitric acid we have,

$25*cm^3xx10^-3*L*cm^-3xx1.0*mol*L^-1=0.025*mol$ .

And with respect to potassium hydroxide we have,

$50*cm^3xx10^-3*L*cm^-3xx0.5*mol*L^-1=0.025*mol$

And thus there are equimolar quantities of nitric acid and sodium hydroxide, and at the end of addition we have a $75*cm^3$ volume that is stoichiometric in potassium nitrate. And since potassium nitrate does not affect solution $pH$ , we have a NEUTRAL solution, $pH=7$ .

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If $25cm^3$ of $1.0molL^-1$ nitric acid are reacted with. $50cm^3$ $0.5molL^-1$ $NaOH$ what is the $pH$ ?

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If $25cm^3$ of $1.0molL^-1$ nitric acid are reacted with. $50cm^3$ $0.5molL^-1$ $NaOH$ what is the $pH$ ?