Bundle: General Chemistry, Loose-leaf Version, 11th + OWLv2 with Student Solutions Manual eBook, 4 terms (24 months) Printed Access Card
Bundle: General Chemistry, Loose-leaf Version, 11th + OWLv2 with Student Solutions Manual eBook, 4 terms (24 months) Printed Access Card
11th Edition
ISBN: 9781337128469
Author: Darrell Ebbing, Steven D. Gammon
Publisher: Cengage Learning
Question
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Chapter 3, Problem 3.64QP
Interpretation Introduction

Interpretation:

Mass percentages of each elements present in 5.23 mg of Phenol should be determined.

Concept introduction:

Mass percentage:

The percent ration of mass of analyte that is present in a given sample with total mass of sample to give a mass percent of analyte present in a given sample.

Massprecent%=MassofanalyteMassofsample×100

Mole:

Number of atoms present in gram atomic mass of element is known as Avogadro number.

Avogadro number is 6.022136×1023

One mole equal of atom equal to Avogadro number (6.022136×1023) hence, 1 mole of Iron contain atom 6.022136×1023 Fe atoms.

The mole of taken gram mass of compound is given by ration between taken mass of compound and molar mass of compound.

Mole=MassMolarmass

Empirical formula

The simplest ratio of the elements that are present in a molecule are representing as empirical formula.

Expert Solution & Answer
Check Mark

Answer to Problem 3.64QP

The mass percentage of C in Phenol is 76.54%

The mass percentage of H in Phenol is 6.44%

The mass percentage of O in Phenol is 17.0%

Explanation of Solution

To calculate the masses of Carbon, Hydrogen and Oxygen.

Molar mass of Carbon is 12.01 g

Molar mass of Hydrogen is 1.008 g

Molar mass of Oxygen is 16.00 g

One CO2 molecule has 1 Carbon atom.

Mass of Carbon present in 14.67 mg CO2 is,

MassofC=14.67 mg CO2×1molCO244.0gCO2×12.01molC=4.0033mgC

One H2O molecule has 2 Hydrogen atoms.

Mass of Hydrogen present in 3.01 mg H2O is,

MassofH=3.01 mg H21molH2O18.02gH2O×1.008H1molH=0.3368mgH

The given masses and molar masses of Carbon, Hydrogen are plugged in above equation to give masses of Carbon, Hydrogen are present in 5.23 mg of Phenol .

Mass of oxygen present in Phenol is,

=5.23mg-(4.0033+0.3368)=0.8899mgO

Subtract the calculated masses of Carbon, Hydrogen from 5.23 mg of Phenol to give a mass of Oxygen present in 5.23 mg of Phenol .

To calculate the mass percentage of Carbon, Hydrogen and Oxygen

To calculate the mass percentage of C in 5.23 mg of Phenol

%CinPhenol=MassofCMassofPhenol×100=4.0033mg5.23mg×100=76.54%

Molar masses of C and Phenol are plugged in above equation to give percentage composition of C present in 5.23 mg of Phenol .

To calculate the mass percentage of H in Phenol

%HinPhenol=MassofHMassofPhenol×100=0.3368mg5.23mg×100=6.44%

Molar masses of H and Phenol are plugged in above equation to give percentage composition of H present in Phenol .

To calculate the mass percentage of H in Phenol

%OinPhenol=MassofOMassofPhenol×100=0.8899mg5.23mg×100=17.0%

Molar masses of O and Phenol are plugged in above equation to give percentage composition of O present in Phenol .

Hence,

The mass percentage of C in Phenol is 76.54%

The mass percentage of H in Phenol is 6.44%

The mass percentage of O in Phenol is 17.0%

Conclusion

Mass percentages of each elements present in 5.23 mg of Phenol was determined.

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Chapter 3 Solutions

Bundle: General Chemistry, Loose-leaf Version, 11th + OWLv2 with Student Solutions Manual eBook, 4 terms (24 months) Printed Access Card

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How...Ch. 3 - Prob. 3.4QPCh. 3 - Prob. 3.5QPCh. 3 - A substance has the molecular formula C6H12O2....Ch. 3 - Hydrogen peroxide has the empirical formula HO and...Ch. 3 - Describe in words the meaning of the equation...Ch. 3 - Prob. 3.9QPCh. 3 - Prob. 3.10QPCh. 3 - Prob. 3.11QPCh. 3 - Prob. 3.12QPCh. 3 - How many grams of NH3 will have the same number of...Ch. 3 - Which of the following has the largest number of...Ch. 3 - How many atoms are present in 123 g of magnesium...Ch. 3 - Calculations with Chemical Formulas and Equations...Ch. 3 - Prob. 3.17QPCh. 3 - Moles within Moles and Molar Mass Part 1: a How...Ch. 3 - You react nitrogen and hydrogen in a container to...Ch. 3 - Propane, C3H8, is the fuel of choice in a gas...Ch. 3 - Prob. 3.21QPCh. 3 - Prob. 3.22QPCh. 3 - High cost and limited availability of a reactant...Ch. 3 - Prob. 3.24QPCh. 3 - A friend asks if you would be willing to check...Ch. 3 - Prob. 3.26QPCh. 3 - Find the formula weights of the following...Ch. 3 - Find the formula weights of the following...Ch. 3 - Calculate the formula weight of the following...Ch. 3 - Calculate the formula weight of the following...Ch. 3 - Ammonium nitrate, NH4NO3, is used as a nitrogen...Ch. 3 - Phosphoric acid, H3PO4, is used to make phosphate...Ch. 3 - Calculate the mass (in grams) of each of the...Ch. 3 - Diethyl ether, (C2H5)2O, commonly known as ether,...Ch. 3 - Glycerol, C3H8O3, is used as a moistening agent...Ch. 3 - Calculate the mass in grams of the following. a...Ch. 3 - Calculate the mass in grams of the following. a...Ch. 3 - Boric acid, H3BO3, is a mild antiseptic and is...Ch. 3 - Carbon disulfide, CS2, is a colorless, highly...Ch. 3 - Obtain the moles of substance in the following. a...Ch. 3 - Obtain the moles of substance in the following. a...Ch. 3 - Calcium sulfate, CaSO4, is a white, crystalline...Ch. 3 - A 1.547-g sample of blue copper(II) sulfate...Ch. 3 - Calculate the following. a number of atoms in 8.21...Ch. 3 - Calculate the following. a number of atoms in 25.7...Ch. 3 - Carbon tetrachloride is a colorless liquid used in...Ch. 3 - Chlorine trifluoride is a colorless, reactive gas...Ch. 3 - A 1.680-g sample of coal contains 1.584 g C....Ch. 3 - A 6.01-g aqueous solution of isopropyl alcohol...Ch. 3 - Phosphorus oxychloride is the starting compound...Ch. 3 - Ethyl mercaptan is an odorous substance added to...Ch. 3 - A fertilizer is advertised as containing 14.0%...Ch. 3 - Seawater contains 0.0065% (by mass) of bromine....Ch. 3 - A sample of an alloy of aluminum contains 0.0898...Ch. 3 - A sample of gas mixture from a neon sign contains...Ch. 3 - Calculate the percentage composition for each of...Ch. 3 - Calculate the percentage composition for each of...Ch. 3 - Calculate the mass percentage of each element in...Ch. 3 - Calculate the mass percentage of each element in...Ch. 3 - Which contains more carbon, 6.01 g of glucose....Ch. 3 - Which contains more sulfur, 40.8 g of calcium...Ch. 3 - Ethylene glycol is used as an automobile...Ch. 3 - Prob. 3.64QPCh. 3 - An oxide of osmium (symbol Os) is a pale yellow...Ch. 3 - An oxide of tungsten (symbol W) is a bright yellow...Ch. 3 - Potassium bromate is a colorless, crystalline...Ch. 3 - Hydroquinone, used as a photographic developer, is...Ch. 3 - Acrylic acid, used in the manufacture of acrylic...Ch. 3 - Malonic acid is used in the manufacture of...Ch. 3 - Two compounds have the same composition: 92.25% C...Ch. 3 - Two compounds have the same composition: 85.62% C...Ch. 3 - Putreseine a substance produced by decaying...Ch. 3 - Compounds of boron with hydrogen are called...Ch. 3 - Oxalic acid is a toxic substance used by laundries...Ch. 3 - Adipic acid is used in the manufacture of nylon....Ch. 3 - Ethylene, C2H4, bums in oxygen to give carbon...Ch. 3 - Hydrogen sulfide gas, H2S, burns in oxygen to give...Ch. 3 - Prob. 3.79QPCh. 3 - Ethanol, C2H5OH, burns with the oxygen in air to...Ch. 3 - Iron in the form of fine wire burns in oxygen to...Ch. 3 - Prob. 3.82QPCh. 3 - Nitric acid, HNO3, is manufactured by the Ostwald...Ch. 3 - White phosphorus, P4, is prepared by fusing...Ch. 3 - Tungsten metal, W, is used to make incandescent...Ch. 3 - Acrylonitrile, C3H3N, is the starting material for...Ch. 3 - The following reaction, depicted using molecular...Ch. 3 - Using the following reaction (depicted using...Ch. 3 - When dinitrogen pentoxide, N2O5, a white solid, is...Ch. 3 - Copper metal reacts with mine acid. Assume that...Ch. 3 - Potassium superoxide, KO2, is used in rebreathing...Ch. 3 - Solutions of sodium hypochlorite, NaClO, are sold...Ch. 3 - Methanol, CH3OH, is prepared industrially from the...Ch. 3 - Carbon disulfide, CS2, burns in oxygen. 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