Chemistry & Chemical Reactivity
Chemistry & Chemical Reactivity
10th Edition
ISBN: 9781337399074
Author: John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher: Cengage Learning
bartleby

Concept explainers

bartleby

Videos

Textbook Question
Book Icon
Chapter 2, Problem 133GQ

Empirical and molecular formulas.

(a) Fluorocarbonyl hypofluorite is composed of 14.6% C, 30.0% O, and 46.3% F. The molar mass of the compound is 82 g/mol. Determine the empirical and molecular formulas of the compound,

(b) Azulene, a beautiful blue hydrocarbon, is 93.71% C and has a molar mass of 128.16 g/mol. What are the empirical and molecular formulas of azulene?

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The empirical and molecular formulas for the given fluorocarbonyl hypofluorite should be determined.

Concept introduction:

  • Empirical formula of a compound represents the smallest whole number relative ratio of elements in that compound.
  • Equation for finding Molecular formula from the empirical formula,

    MolarmassEmpiricalformula mass × Empirical formula

  • Equation for number moles from mass and molar mass,

  Numberofmoles=MassingramsMolarmass

  • Mass percent of elements of a compound is the ratio of mass of element to the mass of whole compound and multiplied with hundred.

Answer to Problem 133GQ

Empirical formula and the molecular formula of the given compound is CF2O2

Explanation of Solution

Given: Mass percent of carbon, oxygen and Florine in the given compound fluorocarbonyl hypofluorite are 14.6%,39.0%and46.3% respectively.

Mass percent of an element means, 100g of compound contains that mass percent of an element in grams. Therefore, mass of  14.6g carbon 39.0g of oxygen and 46.3 g of F are present respectively in 100g of fluorocarbonyl hypofluorite.

Equation for number moles from mass and molar mass is,

  Numberofmoles=MassingramsMolarmass

Therefore, the number of moles of C is,

    Numberofmoles=14.6g12.01g/mol=1.215mol

The number of moles of oxygen is,

    Numberofmoles=39g16g/mol=2.437mol

The number of moles of F is,

    Numberofmoles=46.3g19g/mol=2.437mol

So, the mole ratio between elements in fluorocarbonyl hypofluorite is,

    C:F:O=1.215:2.437:2.437

Dividing the every element’s number of moles by the smallest number of mole.

    C:F:O=1.2151.215:2.4371.215:2.4371.215 =1:2:2 =1C:2F:2O

Empirical formula of a compound represents the smallest whole number relative ratio of elements in that compound.

Therefore empirical formula of the given compound is CF2O2.

Equation for finding Molecular formula from the empirical formula,

    MolarmassEmpiricalformula mass × Empirical formula

Empirical formula mass and molar mass of the compound is 82g substituting this in the above equation,

    Molecularformulaofthecompound=8282×CF2O2 =CF2O2

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The empirical and molecular formulas for the given azulene should be determined.

Concept introduction:

  • Empirical formula of a compound represents the smallest whole number relative ratio of elements in that compound.
  • Equation for finding Molecular formula from the empirical formula,

    MolarmassEmpiricalformula mass × Empirical formula

  • Equation for number moles from mass and molar mass,

  Numberofmoles=MassingramsMolarmass

  • Mass percent of elements of a compound is the ratio of mass of element to the mass of whole compound and multiplied with hundred.

Answer to Problem 133GQ

Empirical formula is C5H4 and the molecular formula of the compound is C10H8

Explanation of Solution

Given

Mass percent of carbon in the given compound azulene is 93.71% the remaining part is the percent of hydrogen in the compound and it is 6.29%

Mass percent of an element means, 100g of compound contains that mass percent of an element in grams. Therefore, mass of  93.71g carbon and 6.29g of H are present respectively in 100g of the given compound azulene.

Equation for number moles from mass and molar mass is,

  Numberofmoles=MassingramsMolarmass

Therefore, the number of moles of C is,

    Numberofmoles=93.71g12.01g/mol=7.802mol

The number of moles of hydrogen is,

    Numberofmoles=6.29g1g/mol=6.29mol

So, the mole ratio between elements in the given compound azulene is,

    C:H=7.802:6.29

Dividing the every element’s number of moles by the smallest number of mole.

        C:H =7.8026.29:6.296.29 =1.25:1

Empirical formula of a compound represents the smallest whole number relative ratio of elements in that compound.

To get the whole number ratio, multiplying the above ratio with 4.

C:H=(1.25:1) =5:4 =5C:4H

Therefore empirical formula of the given compound is C5H4.

Equation for finding Molecular formula from the empirical formula,

    MolarmassEmpiricalformula mass × Empirical formula

Empirical formula mass of the compound is 64.05g and molar mass of the compound is 128.16g/mol substituting this in the above equation,

    Molecularformulaofthecompound=64.05128.16×C5H4 =C10H8

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!

Chapter 2 Solutions

Chemistry & Chemical Reactivity

Ch. 2.7 - Hydrated nickel(II) chloride is a beautiful green,...Ch. 2.8 - Prob. 2.12CYUCh. 2.8 - Prob. 1.1ACPCh. 2.8 - Prob. 1.2ACPCh. 2.8 - Prob. 2.1ACPCh. 2.8 - Salvarsan was long thought to be a single...Ch. 2.8 - To determine the density of atmospheric nitrogen....Ch. 2.8 - The density of a mixture of gases may be...Ch. 2.8 - Atmospheric argon is a mixture of three stable...Ch. 2.8 - Given that the density of argon is 1.78 g/L under...Ch. 2 - Prob. 1PSCh. 2 - Define mass number. What is the difference between...Ch. 2 - An atom has a very small nucleus surrounded by an...Ch. 2 - A gold atom has a radius of 145 pm. If you could...Ch. 2 - Give the complete symbol(ZAX), including atomic...Ch. 2 - Give the complete symbol(ZAX), including atomic...Ch. 2 - Prob. 7PSCh. 2 - Atomic structure. (a) The synthetic radioactive...Ch. 2 - Prob. 9PSCh. 2 - In 1886 Eugene Goldstein observed positively...Ch. 2 - Marie Curie was born in Poland but studied and...Ch. 2 - Prob. 12PSCh. 2 - The mass of an 16 O atom is 15.995 u. What is its...Ch. 2 - What is the mass of one 16O atom, in grams? (The...Ch. 2 - Cobalt has three radioactive isotopes used in...Ch. 2 - Naturally occurring silver exists as two isotopes...Ch. 2 - Name and describe the composition of the three...Ch. 2 - Which of the following are isotopes of element X,...Ch. 2 - Thallium has two stable isotopes, 203TIand 205Tl....Ch. 2 - Strontium has four stable isotopes. Strontium-84...Ch. 2 - Verify that the atomic weight of lithium is 6.94,...Ch. 2 - Verify that the atomic weight of magnesium is...Ch. 2 - Gallium has two naturally occurring isotopes, 69Ga...Ch. 2 - Europium has two stable isotopes, 151Eu and 153Eu,...Ch. 2 - Titanium and thallium have symbols that are easily...Ch. 2 - In Groups 4A-6A, there are several elements whose...Ch. 2 - How many periods of the periodic table have 8...Ch. 2 - Prob. 28PSCh. 2 - Prob. 29PSCh. 2 - Prob. 30PSCh. 2 - Classify the following elements as metals,...Ch. 2 - Prob. 32PSCh. 2 - Prob. 33PSCh. 2 - Prob. 34PSCh. 2 - What is the charge on the common monatomic ions of...Ch. 2 - What is the charge on the common monatomic ions of...Ch. 2 - Prob. 37PSCh. 2 - Prob. 38PSCh. 2 - When a potassium atom becomes a monatomic ion, how...Ch. 2 - When oxygen and sulfur atoms become monatomic...Ch. 2 - Prob. 41PSCh. 2 - Prob. 42PSCh. 2 - Give the formula and the number of each ion that...Ch. 2 - Give the formula and the number of each ion that...Ch. 2 - Prob. 45PSCh. 2 - Prob. 46PSCh. 2 - Prob. 47PSCh. 2 - Prob. 48PSCh. 2 - Prob. 49PSCh. 2 - Prob. 50PSCh. 2 - Prob. 51PSCh. 2 - Prob. 52PSCh. 2 - Write the formulas for the four ionic compounds...Ch. 2 - Write the formulas for the four ionic compounds...Ch. 2 - Sodium ions, Na+, form ionic compounds with...Ch. 2 - Consider the two ionic compounds NaCl and CaO. In...Ch. 2 - Prob. 57PSCh. 2 - Name each of the following binary, nonionic...Ch. 2 - Prob. 59PSCh. 2 - Prob. 60PSCh. 2 - Calculate the mass, in grams, of each the...Ch. 2 - Calculate the mass, in grams, of each the...Ch. 2 - Calculate the amount (moles) represented by each...Ch. 2 - Calculate the amount (moles) represented by each...Ch. 2 - You are given 1.0-g samples of He, Fe, Li, Si, and...Ch. 2 - You are given 0.10-g samples of K, Mo, Cr, and Al....Ch. 2 - Analysis of a 10.0-g sample of apatite (a major...Ch. 2 - A semiconducting material is composed of 52 g of...Ch. 2 - Calculate the molar mass of each of the following...Ch. 2 - Calculate the molar mass of each of the following...Ch. 2 - Calculate the molar mass of each hydrated...Ch. 2 - Prob. 72PSCh. 2 - What mass is represented by 0.0255 mol of each of...Ch. 2 - Assume you have 0.123 mol of each of the following...Ch. 2 - Sulfur trioxide, SO3, is made industrially in...Ch. 2 - How many ammonium ions and how many sulfate ions...Ch. 2 - Acetaminophen, whose structure is drawn below, is...Ch. 2 - An Alka-Seltzer tablet contains 324 mg of aspirin...Ch. 2 - Calculate the mass percent of each element in the...Ch. 2 - Calculate the mass percent of each element in the...Ch. 2 - Calculate the mass percent of copper in CuS,...Ch. 2 - Calculate the mass percent of titanium in the...Ch. 2 - Succinic acid occurs in fungi and lichens. Its...Ch. 2 - An organic compound has the empirical formula...Ch. 2 - Prob. 85PSCh. 2 - Complete the following table:Ch. 2 - Acetylene is a colorless gas used as a fuel in...Ch. 2 - A large family of boron-hydrogen compounds has the...Ch. 2 - Cumene, a hydrocarbon, is a compound composed only...Ch. 2 - In 2006, a Russian team discovered an interesting...Ch. 2 - Mandelic acid is an organic acid composed of...Ch. 2 - Nicotine, a poisonous compound found in tobacco...Ch. 2 - A compound containing xenon and fluorine was...Ch. 2 - Elemental sulfur (1.256 g) is combined with...Ch. 2 - Epsom salt is used in tanning leather and in...Ch. 2 - You combine 1.25 g of germanium, Ge, with excess...Ch. 2 - The mass spectrum of nitrogen dioxide is...Ch. 2 - The mass spectrum of phosphoryl chloride. POF3, is...Ch. 2 - The mass spectrum of CH3Cl is illustrated here....Ch. 2 - Prob. 100PSCh. 2 - Fill in the blanks in the table (one column per...Ch. 2 - Potassium has three naturally occurring isotopes...Ch. 2 - Crossword Puzzle: In the 2 2 box shown here, each...Ch. 2 - The following chart shows a general decline in...Ch. 2 - Copper atoms. (a) What is the average mass of one...Ch. 2 - Prob. 106GQCh. 2 - Prob. 107GQCh. 2 - Identify two nonmetallic elements that have...Ch. 2 - Prob. 109GQCh. 2 - Prob. 110GQCh. 2 - Prob. 111GQCh. 2 - When a sample of phosphorus burns in air, the...Ch. 2 - Although carbon-12 is now used as the standard for...Ch. 2 - A reagent occasionally used in chemical synthesis...Ch. 2 - Prob. 115GQCh. 2 - Prob. 116GQCh. 2 - Which of the following compounds has the highest...Ch. 2 - Which of the following samples has the largest...Ch. 2 - The structure of one of the bases in DNA, adenine,...Ch. 2 - Prob. 120GQCh. 2 - A drop of water has a volume of about 0.050 mL....Ch. 2 - Capsaicin, the compound that gives the hot taste...Ch. 2 - Prob. 123GQCh. 2 - Write the molecular formula and calculate the...Ch. 2 - Malic acid, an organic acid found in apples,...Ch. 2 - Your doctor has diagnosed you as being anemicthat...Ch. 2 - A compound composed of iron and carbon monoxide,...Ch. 2 - Ma huang, an extract from the ephedra species of...Ch. 2 - Saccharin, a molecular model of which is shown...Ch. 2 - Prob. 130GQCh. 2 - Write the formula for each of the following pounds...Ch. 2 - Complete the table by placing symbols, formulas,...Ch. 2 - Empirical and molecular formulas. (a)...Ch. 2 - Cacodyl, a compound containing arsenic, was...Ch. 2 - The action of bacteria on meat and fish produces a...Ch. 2 - In the laboratory you combine 0.125 g of nickel...Ch. 2 - A compound called MMT was once used to boost the...Ch. 2 - Elemental phosphorus is made by heating calcium...Ch. 2 - Chromium is obtained by heating chromium(III)...Ch. 2 - Stibnite, Sb2S3, is a dark gray mineral from which...Ch. 2 - Direct reaction of iodine (I2) and chlorine (Cl2)...Ch. 2 - In a reaction, 2.04 g of vanadium combined with...Ch. 2 - Iron pyrite, often called fools gold, has the...Ch. 2 - Which of the following statements about 57.1 g of...Ch. 2 - The formula of barium molybdate is BaMoO4. Which...Ch. 2 - A metal M forms a compound with the formula MCl4....Ch. 2 - Pepto-Bismol, which can help provide relief for an...Ch. 2 - The weight percent of oxygen in an oxide that has...Ch. 2 - The mass of 2.50 mol of a compound with the...Ch. 2 - The elements A and Z combine to produce two...Ch. 2 - Polystyrene can be prepared by heating styrene...Ch. 2 - A sample of hemoglobin is found to be 0.335% iron....Ch. 2 - Consider an atom of 64Zn. (a) Calculate the...Ch. 2 - Estimating the radius of a lead atom. (a) You are...Ch. 2 - A piece of nickel foil, 0.550 mm thick and 1.25 cm...Ch. 2 - Uranium is used as a fuel, primarily in the form...Ch. 2 - In an experiment, you need 0.125 mol of sodium...Ch. 2 - Mass spectrometric analysis showed that there are...Ch. 2 - If Epsom salt, MgSO4 x H2O, is heated to 250 C,...Ch. 2 - The alum used in cooking is potassium aluminum...Ch. 2 - Tin metal (Sn) and purple iodine (I2) combine to...Ch. 2 - When analyzed, an unknown compound gave these...Ch. 2 - Two general chemistry students working together in...Ch. 2 - To find the empirical formula of tin oxide, you...Ch. 2 - Prob. 165SCQCh. 2 - Prob. 166SCQCh. 2 - The photo here depicts what happens when a coil of...Ch. 2 - A jar contains some number of jelly beans. To find...
Knowledge Booster
Background pattern image
Chemistry
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.
Similar questions
Recommended textbooks for you
Text book image
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781337399074
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Text book image
General, Organic, and Biological Chemistry
Chemistry
ISBN:9781285853918
Author:H. Stephen Stoker
Publisher:Cengage Learning
Text book image
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Text book image
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Text book image
Chemistry
Chemistry
ISBN:9781133611097
Author:Steven S. Zumdahl
Publisher:Cengage Learning
Text book image
Chemistry: An Atoms First Approach
Chemistry
ISBN:9781305079243
Author:Steven S. Zumdahl, Susan A. Zumdahl
Publisher:Cengage Learning
Bonding (Ionic, Covalent & Metallic) - GCSE Chemistry; Author: Science Shorts;https://www.youtube.com/watch?v=p9MA6Od-zBA;License: Standard YouTube License, CC-BY
Stoichiometry - Chemistry for Massive Creatures: Crash Course Chemistry #6; Author: Crash Course;https://www.youtube.com/watch?v=UL1jmJaUkaQ;License: Standard YouTube License, CC-BY