Chemistry 10th Edition

by Whitten, Kenneth W.; Davis, Raymond E.; Peck, Larry; Stanley, George G.

Published by Brooks/Cole Publishing Co.

ISBN 10: 1133610668

ISBN 13: 978-1-13361-066-3

Chapter 2 - Chemical Formulas and Composition Stoichiometrhy - Exercises - Composition Stoichiometry - Page 76: 55

Answer

a.) 5.60 g N* (1 mole N/14.01 g N) = 0.3997 g 14.2 g Cl*(1 mole Cl/ 35.45 g Cl)= 0.4006 g 0.800 g H*(1 mole H/1.01 g H)= 0.7921 g 0.3997/ 0.3997= 1 0.4006/0.3997= 2 0.7921/ 0.3997= 2 NClH3

Work Step by Step

b) 26.2 % N= 26.2 g N* (1 mole N/ 14.01 g) = 1.869 66.4% Cl = 66.4 g Cl*(1 mole/ 35.45 g)= 1.873 7.5% H= 7.5 g H* (1 mole/ 1.01 g)= 7.426 1.869/1.869= 1 1.873/1.869= 1 7.426/1.869= 4 NClH4

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