If 1.07 g of CUx{SO4)y z H2O(s) is heated to form 0.80 g of the dehydrated Cux(SO4)y(s), determine the grams (and moles) of water lost: 2. If the dehydrated compound was found to contain 0.31 g Cu, determine the moles of Cu: Determine the grams of sulfate by difference (g Cux(SO4)y - g Cu), and then convert to moles sulfate (use MM of SO4) 3. 4. Determine the mole ratios by dividing by the smallest moles: moles copper = X smallest moles moles sulfate smallest moles moles water = Z smallest moles 6. Name the hydrate: 5. Write the formula: 0°H (*os) Page 9 of 9 Determination of a Chemical Formula Page 1 of 9

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Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
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Chapter1: Chemical Foundations
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1. If 1.07 g of CUx(SO4)y z H2O(s) is heated to form 0.80 g of the dehydrated Cux(SO4)y(s), determine the
grams (and moles) of water lost:
2. If the dehydrated compound was found to contain 0.31 g Cu, determine the moles of Cu:
3. Determine the grams of sulfate by difference ( gCux(SO4)y - g Cu), and then convert to moles sulfate (use
MM of SO4)
4. Determine the mole ratios by dividing by the smallest moles:
moles copper
= X
smallest moles
moles sulfate
||
smallest moles
%3D
moles water
= Z
smallest moles
6. Name the hydrate:
5. Write the formula:
O²H (*os)ng
Page 9 of 9
Determination of a Chemical Formula
Page 1 of 9
Transcribed Image Text:1. If 1.07 g of CUx(SO4)y z H2O(s) is heated to form 0.80 g of the dehydrated Cux(SO4)y(s), determine the grams (and moles) of water lost: 2. If the dehydrated compound was found to contain 0.31 g Cu, determine the moles of Cu: 3. Determine the grams of sulfate by difference ( gCux(SO4)y - g Cu), and then convert to moles sulfate (use MM of SO4) 4. Determine the mole ratios by dividing by the smallest moles: moles copper = X smallest moles moles sulfate || smallest moles %3D moles water = Z smallest moles 6. Name the hydrate: 5. Write the formula: O²H (*os)ng Page 9 of 9 Determination of a Chemical Formula Page 1 of 9
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