Chemistry
Chemistry
9th Edition
ISBN: 9781133611097
Author: Steven S. Zumdahl
Publisher: Cengage Learning
bartleby

Concept explainers

Question
Book Icon
Chapter 8, Problem 31E

(i)

(a)

Interpretation Introduction

Interpretation: The exercise 31 and 33 is to be repeated using electro-negativity values of the elements. Any difference, if present, is to be accounted for.

Concept introduction: Electro-negativity is defined as the measure of how strongly elements attract bonding electrons to themselves. More the electro-negativity more will be the degree of attraction.

To determine: The order of increasing electro-negativity and polarity of given elements from exercise 31 and 33; the comparison with figure 3-4.

(i)

(a)

Expert Solution
Check Mark

Answer to Problem 31E

No, there are no differences.

Explanation of Solution

Refer to figure 3-4.

The electro negativity of carbon (C) , nitrogen (N) , and oxygen (O) elements obtained from figure 3-4 is:

  • Carbon: 2.5
  • Oxygen: 3.5
  • Nitrogen: 3.0

Thus, the increasing order of electro negativity is C < N < O .

Repeat exercise 31 (a):

In a periodic table nuclear attraction on incoming electrons increases along the period because the atomic radii decreases from left to right. As a result electro negativity increases along the period from left to right.

The atomic radii increase down the group because nuclear attraction decreases. As a result electro negativity decreases down the group.

The carbon (C) , nitrogen (N) , and oxygen (O) are the elements of period 2 and their electronic configurations are as follows:

  • Carbon: 1s22s22p2
  • Nitrogen: 1s22s22p3
  • oxygen: 1s22s22p4

The electro negativity increases along the period from left to right. Hence the correct order of increasing electro negativity of C, N, O element is:

  • C < N < O

The answer obtained from exercise 31 (a) is C < N < O .

(b)

Interpretation Introduction

Interpretation: The exercise 31 and 33 is to be repeated using electronegativity values of the elements. Any difference, if present, is to be accounted for.

Concept introduction: Electronegativity is defined as the measure of how strongly elements attract bonding electrons to themselves. More the electronegativity more will be the degree of attraction.

To determine: The order of increasing electro-negativity of S, Se, Cl elements from exercise 31; the comparison with figure 3-4.

(b)

Expert Solution
Check Mark

Answer to Problem 31E

No, there is  no difference.

Explanation of Solution

Refer to figure 3-4

The electro negativity of Selenium (Se), sulfur (S) and chlorine (Cl) obtained from figure 3-4 are:

  • Selenium: 2.4
  • Sulfur: 2.5
  • Chlorine: 3.0

The increasing order of electro negativity is Se < S < Cl .

Repeat exercise 31 (b):

In a periodic table nuclear attraction on incoming electrons increases along the period because the atomic radii decreases from left to right. As a result electro-negativity increases along the period from left to right.

The atomic radii increase down the group because nuclear attraction decreases. As a result electro-negativity decreases down the group.

The element Selenium (Se) lies in 4th period, 16th group, sulfur (S) lie in 3rd period, 16th group and chlorine (Cl) lie in 3rd period, 17th group. The electronic configuration of these elements as follows:

  • Selenium: 1s22s22p63s23p63d104s24p4
  • Sulfur: 1s22s22p63s23p4
  • Chlorine: 1s22s22p63s23p5

The electro-negativity decreases down the group. Hence the correct order of increasing electro-negativity of S, Se, Cl element is:

  • Se < S < Cl

The answer obtained from exercise 31(b) is Se < S < Cl .

(c)

Interpretation Introduction

Interpretation: The exercise 31 and 33 is to be repeated using electronegativity values of the elements. Any difference, if present, is to be accounted for.

Concept introduction: Electronegativity is defined as the measure of how strongly elements attract bonding electrons to themselves. More the electronegativity more will be the degree of attraction.

To determine: The order of increasing electro-negativity of Si, Ge, Sn elements from exercise 31; the comparison with figure 3-4.

(c)

Expert Solution
Check Mark

Answer to Problem 31E

Yes, the answer is different.

Explanation of Solution

Refer to figure 3-4

The electro-negativity of Silicon (Si) , Germanium (Ge) and Tin (Sn) obtained from figure 3-4 are:

  • Silicon: 1.8
  • Germanium: 1.8
  • Tin: 1.8

The increasing order of electro-negativity is Si=Ge=Sn .

Repeat exercise 31 (c):

In a periodic table nuclear attraction on incoming electrons increases along the period because the atomic radii decreases from left to right. As a result electro-negativity increases along the period from left to right.

The atomic radii increase down the group because nuclear attraction decreases. As a result electro-negativity decreases down the group.

The element Silicon lies in 3rd period, 14th group, Germanium lie in 4th period, 14th group and Tin lie in 5th period, 14th group. The electronic configuration of these elements as follows:

  • Silicon: 1s22s22p63s23p2
  • Germanium: 1s22s22p63s23p63d104s24p2
  • Tin: 1s22s22p63s23p63d104s24p64d105s25p2

The electro-negativity increases along the period from left to right. Hence the correct order of increasing electro-negativity of Si, Ge, Sn element is:

  • Sn<Ge<Si

The answer obtained from exercise 31(c) is Sn<Ge<Si .

(d)

Interpretation Introduction

Interpretation: The exercise 31 and 33 is to be repeated using electronegativity values of the elements. Any difference, if present, is to be accounted for.

Concept introduction: Electronegativity is defined as the measure of how strongly elements attract bonding electrons to themselves. More the electronegativity more will be the degree of attraction.

To determine: The order of increasing electro-negativity of Tl, S, Ge elements from exercise 31; the comparison with figure 3-4.

(d)

Expert Solution
Check Mark

Answer to Problem 31E

Yes, the answer is different.

Explanation of Solution

Refer to figure 3-4

The electro-negativity of Thallium (Tl) , Germanium (Ge) and sulfur (S) obtained from figure 3-4 are:

  • Thallium: 1.8
  • Germanium: 1.8
  • Sulfur: 2.5

The increasing order of electro-negativity is Tl=Ge<S .

Repeat exercise 31 (d):

In a periodic table nuclear attraction on incoming electrons increases along the period because the atomic radii decreases from left to right. As a result electro-negativity increases along the period from left to right.

The atomic radii increase down the group because nuclear attraction decreases. As a result electro-negativity decreases down the group.

The element Thallium lies in 6th period, 13th group, Germanium lie in 4th period, 14th group and sulfur lie in 3rd period, 16th group. The electronic configuration of these elements as follows:

  • Thallium: 1s22s22p63s23p63d104s24p64d105s25p64f145d106s26p1
  • Germanium: 1s22s22p63s23p63d104s24p2
  • Sulfur: 1s22s22p63s23p4

The electro-negativity increases along the period from left to right and decreases down the group. Hence the correct order of increasing electro-negativity of Tl, S, Ge element is:

  • Tl<Ge<S

The answer obtained from exercise 31(d) is Tl<Ge<S .

Conclusion

Both the answer was same for elements C, N, O .

The order of increasing electro-negativity of C, N, O elements is C<N<O .

Both the answer was same for elements S, Se, Cl .

The order of increasing electro-negativity of S, Se, Cl elements is Se<S<Cl .

The answer obtained from figure 3-4 was different from exercise 31 (c).

According to figure 3-4,

The order of increasing electro-negativity of Si, Ge, Sn elements is Sn=Ge=Si .

According to exercise 31 (c),

The order of increasing electro-negativity of Si, Ge, Sn elements is Sn<Ge<Si .

The answer obtained from figure 3-4 was different from exercise 31 (d).

According to figure 3-4,

The order of increasing electro-negativity of Tl, S, Ge elements is Tl=Ge<S .

According to exercise 31 (d),

The order of increasing electro-negativity of Tl, S, Ge elements is Tl<Ge<S .

(ii)

(a)

Interpretation Introduction

Interpretation: The exercise 31 and 33 is to be repeated using electronegativity values of the elements. Any difference, if present, is to be accounted for.

Concept introduction: Electronegativity is defined as the measure of how strongly elements attract bonding electrons to themselves. More the electronegativity more will be the degree of attraction.

To determine: The most polar bond among CF, SiF, GeF bonds from exercise 33; the comparison with figure 3-4.

(ii)

(a)

Expert Solution
Check Mark

Answer to Problem 31E

No, there are no differences.

Explanation of Solution

Refer to figure 3-4

The electro-negativity difference of CF bond obtained from figure 3-4:

CF=4.02.5=1.5

The electro-negativity difference of SiF bond obtained from figure 3-4:

SiF=4.01.8=2.2

The electro-negativity difference of GeF bond obtained from figure 3-4:

GeF=4.01.8=2.2

Higher the difference in electro-negativity Lower will be the bond polarity. Hence, CF bond is most polar.

Repeat exercise 33 (a):

Bond polarity is measured by electro-negativity of elements. Higher the difference in electro-negativity lower will be the bond polarity. Also, size of atomic radii plays a great role in formation of polar covalent bond.

According to Fajan’s rule:

“The covalent bond will be more polar if the size of cation is small and size of anion is large.”

In this question size of anion is same.

The size of cation such as Germanium (Ge) and silicon (Si) has larger atomic radii whereas carbon (C) has smaller atomic radii.

Hence, CF bond is most polar.

The answer obtained from exercise 33 (a): CF bond is most polar.

(b)

Interpretation Introduction

Interpretation: The exercise 31 and 33 is to be repeated using electronegativity values of the elements. Any difference, if present, is to be accounted for.

Concept introduction: Electronegativity is defined as the measure of how strongly elements attract bonding electrons to themselves. More the electronegativity more will be the degree of attraction.

To determine: The most polar bond between PCl or SCl bonds from exercise 33; the comparison with figure 3-4.

(b)

Expert Solution
Check Mark

Answer to Problem 31E

No, there are  no differences.

Explanation of Solution

Refer to figure 3-4

The electro-negativity difference of PCl bond obtained from figure 3-4:

PCl=3.02.1=0.9

The electro-negativity difference of SCl bond obtained from figure 3-4:

SCl=3.02.5=0.5

Higher the difference in electro-negativity Lower will be the bond polarity. Hence, SCl is most polar bond.

Repeat exercise 33 (b):

Bond polarity is measured by electro-negativity of elements. Higher the difference in electro-negativity lower will be the bond polarity. Also, size of atomic radii plays a great role in formation of polar covalent bond.

According to Fajan’s rule:

“The covalent bond will be more polar if the size of cation is small and size of anion is large.”

In this question size of anion is same.

The size of cation Sulfur (S) has smaller atomic radii whereas phosphorus (P) atom has bigger atomic radii.

Hence, SCl is most polar bond.

The answer obtained from exercise 33 (b): SCl is most polar bond.

(c)

Interpretation Introduction

Interpretation: The exercise 31 and 33 is to be repeated using electronegativity values of the elements. Any difference, if present, is to be accounted for.

Concept introduction: Electronegativity is defined as the measure of how strongly elements attract bonding electrons to themselves. More the electronegativity more will be the degree of attraction.

To determine: The most polar bond among SF, SCl, SBr bonds from exercise 33; the comparison with figure 3-4.

(c)

Expert Solution
Check Mark

Answer to Problem 31E

No, there are  no differences.

Explanation of Solution

Refer to figure 3-4

The electro-negativity difference of SF bond obtained from figure 3-4:

SF=4.03.0=1.0

The electro-negativity difference of SCl bond obtained from figure 3-4:

SCl=3.02.5=0.5

The electro-negativity difference of SBr bond obtained from figure 3-4:

SBr=2.82.5=0.3

Higher the difference in electro-negativity Lower will be the bond polarity. Hence, SBr is most polar bond.

Repeat exercise 33 (c):

Bond polarity is measured by electro-negativity of elements. Higher the difference in electro-negativity lower will be the bond polarity. Also, size of atomic radii plays a great role in formation of polar covalent bond.

According to Fajan’s rule:

“The covalent bond will be more polar if the size of cation is small and size of anion is large.”

In this question size of cation is same.

The size of anion such as chlorine (Cl) and fluorine (F) has smaller atomic radii whereas Bromine (Br) has higher atomic radii.

Hence, SBr is most polar bond.

The answer obtained from exercise 33 (c) SBr is most polar bond.

(d)

Interpretation Introduction

Interpretation: The exercise 31 and 33 is to be repeated using electronegativity values of the elements. Any difference, if present, is to be accounted for.

Concept introduction: Electronegativity is defined as the measure of how strongly elements attract bonding electrons to themselves. More the electronegativity more will be the degree of attraction.

To determine: The most polar bond among TiCl, SiCl, GeCl bonds from exercise 33; the comparison with figure 3-4.

(d)

Expert Solution
Check Mark

Answer to Problem 31E

Yes, the answer is different.

Explanation of Solution

Refer to figure 3-4

The electro-negativity difference of TiCl bond obtained from figure 3-4:

TiCl=3.01.5=1.5

The electro-negativity difference of SiCl bond obtained from figure 3-4:

SiCl=3.01.8=1.2

The electro-negativity difference of GeCl bond obtained from figure 3-4:

GeCl=3.01.8=1.2

Higher the difference in electro-negativity Lower will be the bond polarity. Hence, SiCl and GeCl are most polar bonds.

Repeat exercise 33 (d):

Bond polarity is measured by electro-negativity of elements. Higher the difference in electro-negativity lower will be the bond polarity. Also, size of atomic radii plays a great role in formation of polar covalent bond.

According to Fajan’s rule:

“The covalent bond will be more polar if the size of cation is small and size of anion is large.”

In this question size of anion is same.

The size of cation such as silicon (Si) has smaller atomic radii in comparison to Titanium and germanium.

Hence, SiCl is most polar bond.

The answer obtained from exercise 33 (d): SiCl is most polar bond.

Conclusion

The answer calculated from figure 3-4 and exercise 33 is:

Both the answer was same for bonds CF, SiF, GeF .

The most polar bond among CF, SiF, GeF is CF .

Both the answer was same for bonds PCl or SCl .

The most polar bond between PCl or SCl is SCl .

Both the answer was same for bonds SF, SCl, SBr .

The most polar bond among SF, SCl, SBr is SBr .

The answer obtained from figure 3-4 was different from exercise 33 (d).

According to figure 3-4,

The most polar bond among TiCl, SiCl, GeCl is SiCl and GeCl .

According to exercise 33 (d),

The most polar bond among TiCl, SiCl, GeCl is SiCl .

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!
Students have asked these similar questions
Which of the following bonds are polar: (a) P—O; (b) S—F; (c) Br—Br; (d) O—Cl? Which is the more electronegative atom in each polar bond?
Some chemists believe that satisfaction of the octet rule should be the top criterion for choosing the dominant Lewis structure of a molecule or ion. Other chemists believe that achieving the best formal charges should be the top criterion. Consider the dihydrogen phosphate ion, HaPO, , in which the H atoms are bonded to O atoms. (a) What is the predicted dominant Lewis structure if satisfying the octet rule is the top eriterion? (b) What is the predicted dominant Lewis structure if achieving the best formal charges is the top criterion?
Although I3- is a known ion, F3- is not. (a) Draw the Lewis structure for I3- (it is linear, not a triangle). (b) One of your classmates says that F3 - does not exist because F is too electronegative to make bonds with another atom. Give an example that proves your classmate is wrong. (c) Another classmate says F3- does not exist because it would violate the octet rule.Is this classmate possibly correct? (d) Yet another classmatesays F3- does not exist because F is too small to make bonds tomore than one atom. Is this classmate possibly correct?

Chapter 8 Solutions

Chemistry

Ch. 8 - The ionic compound AB is formed. The charges on...Ch. 8 - Prob. 3ALQCh. 8 - The bond energy for a CH bond is about 413 kJ/mol...Ch. 8 - Prob. 5ALQCh. 8 - Which has the greater bond lengths: NO2 or NO3?...Ch. 8 - The following ions are best described with...Ch. 8 - The second electron affinity values for both...Ch. 8 - What is meant by a chemical bond? Why do atoms...Ch. 8 - Why are some bonds ionic and some covalent?Ch. 8 - How does a bond between Na and Cl differ from a...Ch. 8 - Arrange the following molecules from most to least...Ch. 8 - Does a Lewis structure tell which electron come...Ch. 8 - Describe the type of bonding that exists in die...Ch. 8 - Some plant fertilizer compounds are (NH4)2SO4,...Ch. 8 - Some of the important properties of ionic...Ch. 8 - What is the electronegativity trend? Where does...Ch. 8 - Give one example of a compound having a linear...Ch. 8 - When comparing the size of different ions, the...Ch. 8 - In general the higher the charge on the ions in an...Ch. 8 - Combustion reactions of fossil fuels provide most...Ch. 8 - Which of the following statements is/are true?...Ch. 8 - Three resonance structures can be drawn for CO2....Ch. 8 - Which of the following statements is(are) true?...Ch. 8 - Without using Fig. 3-4, predict the order of...Ch. 8 - Without using Fig. 3-4, predict the order of...Ch. 8 - Without using Fig. 3-4, predict which bond in each...Ch. 8 - Without using Fig. 3-4, predict which bond in each...Ch. 8 - Prob. 31ECh. 8 - Prob. 32ECh. 8 - Which of the following incorrectly shows the bond...Ch. 8 - Indicate the bond polarity (show the partial...Ch. 8 - Predict the type of bond (ionic, covalent, or...Ch. 8 - List all the possible bonds that can occur between...Ch. 8 - Hydrogen has an electronegativity value between...Ch. 8 - Rank the following bonds in order of increasing...Ch. 8 - State whether or not each of the following has a...Ch. 8 - The following electrostatic potential diagrams...Ch. 8 - Prob. 41ECh. 8 - Prob. 42ECh. 8 - Predict the empirical formulas of the ionic...Ch. 8 - Predict the empirical formulas of the ionic...Ch. 8 - Write electron configurations for a. the cations...Ch. 8 - Write electron configurations for a. the cations...Ch. 8 - Which of the following ions have noble gas...Ch. 8 - What noble gas has the same electron configuration...Ch. 8 - Give the formula of a negative ion that would have...Ch. 8 - Prob. 50ECh. 8 - Give three ions that are isoelectronic with neon....Ch. 8 - Consider the ions Sc3+, Cl, K+, Ca2+, and S2....Ch. 8 - Prob. 53ECh. 8 - For each of the following groups, place the atoms...Ch. 8 - Which compound in each of the following pairs of...Ch. 8 - Which compound in each of the following pairs of...Ch. 8 - Use the following data for potassium chloride to...Ch. 8 - Use the following data for magnesium fluoride to...Ch. 8 - Consider the following energy changes: E(kJ/mol)...Ch. 8 - Compare the electron affinity of fluorine to the...Ch. 8 - Prob. 61ECh. 8 - Use the following data (in kJ/mol) to estimate E...Ch. 8 - Rationalize the following lattice energy values:...Ch. 8 - The lattice energies of FeCl3, FeCl2, and Fe2O3...Ch. 8 - Use bond energy values (Table 3-3) to estimate E...Ch. 8 - Use bond energy values (Table 3-3) to estimate E...Ch. 8 - Prob. 67ECh. 8 - Acetic acid is responsible for the sour taste of...Ch. 8 - Use bond energies to predict E for the following...Ch. 8 - The major industrial source of hydrogen gas is by...Ch. 8 - Use bond energies to estimate E for the combustion...Ch. 8 - Prob. 72ECh. 8 - Prob. 73ECh. 8 - Consider the following reaction: A2+B22AB E =...Ch. 8 - Compare your answers from parts a and b of...Ch. 8 - Compare your answers from Exercise 72 to the H...Ch. 8 - The standard enthalpies of formation for S(g),...Ch. 8 - Use the following standard enthalpies of formation...Ch. 8 - The standard enthalpy of formation for N2H2(g) is...Ch. 8 - The standard enthalpy of formation for NO(g) is...Ch. 8 - Write Lewis structures that obey the octet rule...Ch. 8 - Write Lewis structures that obey the octet rule...Ch. 8 - Write Lewis structures that obey the octet rule...Ch. 8 - Write Lewis structures that obey the octet rule...Ch. 8 - One type of exception to the octet rule are...Ch. 8 - Lewis structures can be used to understand why...Ch. 8 - The most common exceptions to the octet rule are...Ch. 8 - Prob. 88ECh. 8 - Write Lewis structures for the following. Show all...Ch. 8 - Prob. 90ECh. 8 - Benzene (C6H6) consists of a six-membered ring of...Ch. 8 - Borazine (B3N3H6) has often been called inorganic...Ch. 8 - An important observation supporting the concept of...Ch. 8 - Consider the following bond lengths: CO143pmC9O123...Ch. 8 - A toxic cloud covered Bhopal, India, in December...Ch. 8 - Peroxyacetyl nitrate, or PAN, is present in...Ch. 8 - Prob. 99ECh. 8 - Use formal charge arguments to explain why CO has...Ch. 8 - Write Lewis structures that obey the octet rule...Ch. 8 - Write Lewis structures for the species in Exercise...Ch. 8 - Oxidation of the cyanide ion produces the stable...Ch. 8 - When molten sulfur reacts with chlorine gas, a...Ch. 8 - Prob. 106ECh. 8 - Prob. 108ECh. 8 - Predict the molecular structure and bond angles...Ch. 8 - Predict die molecular structure and bond angles...Ch. 8 - There are several molecular structures based on...Ch. 8 - Two variations of the octahedral geometry (see...Ch. 8 - Predict the molecular structure (including bond...Ch. 8 - Predict the molecular structure (including bond...Ch. 8 - Predict the molecular structure (including bond...Ch. 8 - Predict the molecular structure (including bond...Ch. 8 - Prob. 117ECh. 8 - Which of the molecules in Exercise 120 have net...Ch. 8 - Which of the molecules in Exercise 121 have net...Ch. 8 - Which of the molecules in Exercise 122 have net...Ch. 8 - Write Lewis structures and predict the molecular...Ch. 8 - Write Lewis structures and predict whether each of...Ch. 8 - Consider the following Lewis structure where E is...Ch. 8 - Consider the following Lewis structure where E is...Ch. 8 - Prob. 125ECh. 8 - Two different compounds have the formula XeF2Cl2....Ch. 8 - Arrange the following in order of increasing...Ch. 8 - For each of the following, write an equation that...Ch. 8 - Use bond energies (table 3-3), values of electron...Ch. 8 - Write Lewis structures for CO32, HCO3, and H2CO3....Ch. 8 - Which member of the following pairs would you...Ch. 8 - What do each of the following sets of...Ch. 8 - Prob. 133AECh. 8 - Although both Br3 and I3 ions are known, the F3...Ch. 8 - Which of the following molecules have not dipole...Ch. 8 - Prob. 137AECh. 8 - Look up the energies for the bonds in CO and N2....Ch. 8 - Classify the bonding in each of the following...Ch. 8 - List the bonds PCl, PF, OF, and SiF from least...Ch. 8 - Arrange the atoms and/or ions in the following...Ch. 8 - Use the following data to estimate E for the...Ch. 8 - Use bond energy values to estimate E for the...Ch. 8 - Which of the following compounds or ions exhibit...Ch. 8 - The formulas of several chemical substances are...Ch. 8 - Predict the molecular structure, bond angles, and...Ch. 8 - Use Coulombs Jaw, V=Q1Q240r=2.311019Jnm(Q1Q2r) to...Ch. 8 - Prob. 148CPCh. 8 - Calculate the standard heat of formation of the...Ch. 8 - Given the following information: Energy of...Ch. 8 - Prob. 151CPCh. 8 - Think of forming an ionic compound as three steps...Ch. 8 - The compound NF3 is quite stable, but NCl3, is...Ch. 8 - Three processes that have been used for the...Ch. 8 - The compound hexaazaisowurtzitane is one of the...Ch. 8 - Many times extra stability is characteristic of a...Ch. 8 - The study of carbon-containing compounds and their...Ch. 8 - Draw a Lewis structure for the N,...Ch. 8 - Prob. 159CPCh. 8 - Consider the following computer-generated model of...Ch. 8 - A compound, XF5, is 42.81% fluorine by mass....Ch. 8 - Identify the following elements based on their...
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
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Chemistry
Chemistry
ISBN:9781133611097
Author:Steven S. Zumdahl
Publisher:Cengage Learning
Text book image
Chemistry
Chemistry
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Text book image
Chemistry: An Atoms First Approach
Chemistry
ISBN:9781305079243
Author:Steven S. Zumdahl, Susan A. Zumdahl
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
General, Organic, and Biological Chemistry
Chemistry
ISBN:9781285853918
Author:H. Stephen Stoker
Publisher:Cengage Learning