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Hello I need help with problem number three part A and B thank you

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User Ed Ayers
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1 Answer

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In letter A, we have to find out the number of moles of NaOH from the given volume, which must be in Liters, and also the given concentration, which is 1.00 M of NaOH

The volume found was = 5.625 mL, which in liters will be 0.00562 Liters

The formula we must use is:

n = M * V

n = 1.00 * 0.00562

n = 0.005625 moles of NaOH

In letter B, we have to calculate the moles that are in excess of HCl, the reaction that we have is:

NaOH + HCl -> NaCl + H2O

We have:

0.005625 moles of NaOH

0.0150 moles of HCl

According to the molar ratio between NaOH and HCl, we have a ratio of 1 mol of NaOH for 1 mol of HCl, therefore:

1 NaOH = 1 HCl

0.005625 NaOH = x HCl

x = 0.005625 moles of HCl

0.0150 - 0.005625 = 0.009375 moles of HCl of excess

User Lissette
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