Asked by anon
what mass of solute is needed to prepare 400 mL of 0.850 M CuSO4 from CuSO4.5H2O
Answers
Answered by
JAC OB254
No of moles= molarity×volume
=0.85×0.4
=0.34moles
RFM of CuSO4= 64+32+4×16= 160
mass=no of moles×RFM
=0.34×160
=54.4g
=0.85×0.4
=0.34moles
RFM of CuSO4= 64+32+4×16= 160
mass=no of moles×RFM
=0.34×160
=54.4g
Answered by
DrBob222
NOTE: That's 54.4 g CuSO4. But the problem asks for grams of CuSO4.5H2O so that is
54.4 g CuSO4 x (molar mass CuSO4.5H2O/molar mass CuSO4) = 54.4 x 250/160 = 85 g.
54.4 g CuSO4 x (molar mass CuSO4.5H2O/molar mass CuSO4) = 54.4 x 250/160 = 85 g.
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