23.1 g of HCl (a strong acid) is added to water to make 1250 mL of solution. Calculate [H3O+] and pH of the solution

asked Sep 6, 2021 61.6k views

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Answer:

Following are the solution to this question:

Step-by-step explanation:

$\to HCl \ mol = (23.1 \ g)/(36.5 (g)/(mol)) = 0.633 \ mole\\\\\\\to HCl \ molarity = ( 0.633 \ mole )/(1.25 L) \\\\$

$=0.5064 \ m$

$HCl +H_2O \longrightarrow H_3O^(+) + Cl^(-)\\\\\\$

$[H_3O^(+)] =[HCl] \\\\\to [H_3O^(+)] =0.5064 \ m \\\\\to PH =-\log [H_3O^(+)] \\\\$

$= -\log (0.5064)\\\\= 0.295 \\\\=0.3$

Jacob Dalton answered Sep 9, 2021

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