What is $pH$ for a $1.95g$ mass of pure sulfuric acid added to enough water to give a final volume of $1dm^3$ ?

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What is $pH$ for a $1.95g$ mass of pure sulfuric acid added to enough water to give a final volume of $1dm^3$ ?

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Answer 1 · 2017-03-25T15:20:31

$pH=1.40........$

Explanation:

We assume complete dissociation of the sulfuric acid:

$H_2SO_4(aq) + 2H_2O(l) rarr 2H_3O^+ + SO_4^(2-)$

And so $[H_2SO_4]$ $-=$ $((1.95*g)/(98.08*g*mol^-1))/(1*dm^3)$ $=$ $0.0199*mol*L^-1$ . However, this is a FORMAL concentration and corresponds to $[SO_4^(2-)]$ . $[H_3O^+]=0.0398*mol*L^-1$ , i.e. TWICE the formal concentration.

Now since, $pH=-log_10[H_3O^+]$ , $pH=-log_10(0.0398)=??$

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What is $pH$ for a $1.95g$ mass of pure sulfuric acid added to enough water to give a final volume of $1dm^3$ ?

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What is $pH$ for a $1.95g$ mass of pure sulfuric acid added to enough water to give a final volume of $1dm^3$ ?