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What volume of 0.32M HCl is required to completely neutralize 50.0m mL of a 0.12M Mg(OH)2 solution?​

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Answer:

37.5 mL of HCl will be required for complete neutralization with magnesium hydroxide

Step-by-step explanation:


{ \bf{2HCl _((aq)) + Mg(OH)_(2(s))→ MgCl_(2(s)) + 2H _(2) O_((l))}}

we've to first get moles of magnesium hydroxide in 50.0 ml :


{ \sf{1 \: l \: of \: hydroxide \: contains \: 0.12 \: moles}} \\ { \sf{0.05 \: l \: of \: hydroxide \: contain \: (0.05 * 0.12) \: moles}} \\ = { \underline{0.006 \: moles}}

for complete neutralization:


{ \sf{1 \: moles \: of \: hydroxide\: react \: with \: 2 \: moles \: of \: acid}} \\ { \sf{0.006 \: moles \: react \: with \: \{0.006 * 2 \}} \: moles} \\ = { \underline{0.012 \: moles \: of \: acid}}

compare with acid molarity:


{ \sf{0.32 \: moles \: of \: acid \: occupy \: 1 \: litre}} \\ { \sf{0.012 \: moles \: of \: acid \: occupy \: ( (0.012)/(0.32)) \: litres }} \\ { \underline{ = 0.0375 \: litre \: \: = \: \: 37.5 \: ml}}

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