Review for Unit 4 Assessment

1. Review for Unit 4 Assessment

2. Write the formula for the following compounds? L.T. #5 Carbon tetrabromide Dioxygentetranitride Heptasulfurpentaiodide Triphosporusmonoselenide CBr4 O2N4 S7I5 P3Se

3. Name the following compounds L.T. #4 Br2O6 C3N5 S8P4 NCl Dibrominehexaoxide Tricarbonpentanitride Octasulfurtetraphosphide Nitrogen monochloride

4. How many moles are in 100 g of C3N5? L.T. = #10, 11 1 mole 100 g (___________) 106.08 g = 0.94 moles C3N5 From periodic table: (C3N5) C = 12.01 g (3) = 36.03 g N= 14.01 g (5) = + 70.05 g molar mass = 106.08 g

5. How many molecules are in 4.1 moles of Br2O6 ? L.T. = #10, 11 4.1 mol (____________) 6.02 x 1023 mc 1 mol = 2.468 x 1024mc

6. L.T. = #8 What is the percent composition of each element in triphosphoruspentachloride? P3Cl 5 From periodic table: P= 30.97 g (3) = 92.91 g Cl= 35.45 g (5) = + 177.25 g molar mass = 270.16 g / 270.16 = 34.4 % P / 270.16 = 65.6 % Cl

7. L.T. = #3 What is the bond type for each compound? Difference = 0.3 Bond type = nonpolar covalent CBr4 Al2S3 LiF C = 2.5 Br = 2.8 Al = 1.5 S = 2.5 Bond type = Polar covalent Li = 1.0 F = 4.0 Bond type = Ionic

8. L.T. = #2 What might be the properties for each compound? CBr4 LiF Nonpolar = liquid or gas, low m.p., low b.p., soluble in nonpolar substances Ionic = solid, high m.p., high b.p., soluble in ionic substances, excellent conductor

9. L.T. = #6,7 What is the molecular shape for each compound? CBr4 SO2 PCl3 AlBr3 tetrahedral angular triangular pyramidal triangular planar

10. L.T. = #9 What is the percent composition the salt in the following hydrate compound; CuSO4 * 5H2O? Cu = 63.55 g (1) = 63.55 g S= 32.07 g (1) = 32.07 g O = 16.00 g (4) = + 64.00 g molar mass salt = 159.62 g/mol / 249.72 = 63.69 % salt H2O = 18.02 (5) = + 90.10 g/ mol molar mass hydrate= 249.72 g/mol