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A student titrated a solution containing 3.7066 g of an unknown Diprotic acid to the end point using 28.94 ml of 0.3021 M KOH solution. What is the molar mass of the unknown acid? Hint: you must write a balanced equation for the reaction.​

User Cjhveal
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1 Answer

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18 votes

Answer:

Molar mass of the diprotic acid is 424 grams

Step-by-step explanation:

[hint: diprotic acid only contains 2 hydrogen protons]

Ionic equation:


{ \bf{2OH { }^( - ) _((aq)) + 2H { }^( + ) _((aq))→ 2H _(2) O _((l)) }}

first, we get moles of potassium hydroxide in 28.94 ml :


{ \sf{1 \: l \: of \: KOH \: contains \: 0.3021 \: moles}} \\ { \sf{0.02894 \: l \: of \: KOH \: contain \: (0.02894 * 0.3021) \: moles}} \\ { \underline{ = 0.008743 \: moles}}

since mole ratio of diprotic acid : base is 2 : 2, moles are the same.

Therefore, moles of acid that reacted are 0.008743 moles.


{ \sf{0.008743 \: moles \: of \: acid \: weigh \: 3.7066 \: g}} \\ { \sf{1 \: mole \: of \: acid \: weighs \: ( (1 * 3.7066)/(0.008743)) \: g }} \\ = { \underline{423.95 \: g \approx424 \: grams}}

for the molar mass:

User Rezwana
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