
Concept explainers
(a)
Interpretation:
The specific type of relationship between the molecules in the given pair is to be determined.
Concept introduction:
If two molecules have different molecular formulas, they are unrelated. If they have the same molecular formula, they may be the same molecule or isomers. If the two can be interconverted by rotation about a bond, they are conformers. If they have different connectivity of atoms, they are constitutional isomers. If they have the same connectivity, but are not conformers, they must be stereoisomers. Stereoisomers may be enantiomers or diastereomers depending on whether they have nonsuperimposable mirror images or not.

Answer to Problem 5.71P
The two molecules are unrelated.
Explanation of Solution
Structures of the two molecules are:
Both molecules contain the same number of carbon atoms. However, their formulas are different. The first molecule contains a ring with all single bonds. Therefore it has an IHD of 1, and its molecular formula must be
Thus, these are different, unrelated molecules.
Two molecules are unrelated if they have different molecular formulas.
(b)
Interpretation:
The specific type of relationship between the molecules in the given pair is to be determined.
Concept introduction:
If two molecules have different molecular formulas, they are unrelated. If they have the same molecular formula, they may be the same molecule or isomers. If the two can be interconverted by rotation about a bond, they are conformers. If they have different connectivity of atoms, they are constitutional isomers. If they have the same connectivity, but are not conformers, they must be stereoisomers. Stereoisomers may be enantiomers or diastereomers depending on whether they have nonsuperimposable mirror images or not.

Answer to Problem 5.71P
The two molecules are constitutional isomers.
Explanation of Solution
The structures of the two molecules are:
Both molecules contain six carbon atoms. The first one contains a ring, while the second contains one double bond. They both have the same IHD of 1 and the same molecular formula
Therefore, they must be constitutional isomers.
Molecules with the same molecular formula but different connectivities are constitutional isomers.
(c)
Interpretation:
The specific type of relationship between the molecules in the given pair is to be determined.
Concept introduction:
If two molecules have different molecular formulas, they are unrelated. If they have the same molecular formula, they may be the same molecule or isomers. If the two can be interconverted by rotation about a bond, they are conformers. If they have different connectivity of atoms, they are constitutional isomers. If they have the same connectivity, but are not conformers, they must be stereoisomers. Stereoisomers may be enantiomers or diastereomers depending on whether they have nonsuperimpoable mirror images or not.

Answer to Problem 5.71P
The two molecules are unrelated.
Explanation of Solution
The structures of the molecules are:
Both have the same number of carbon atoms and also contain the same ring. However, they have different IHDs, and therefore, different molecular formulas. The first molecule contains only one ring, but no multiple bonds. Therefore, it has an IHD of 1 and a molecular formula of
Therefore, they are unrelated molecules.
Two molecules are unrelated if they have different molecular formulas.
(d)
Interpretation:
The specific type of relationship between the molecules in the given pair is to be determined.
Concept introduction:
If two molecules have different molecular formulas, they are unrelated. If they have the same molecular formula, they may be the same molecule or isomers. If the two can be interconverted by rotation about a bond, they are conformers. If they have different connectivity of atoms, they are constitutional isomers. If they have the same connectivity, but are not conformers, they must be stereoisomers. Stereoisomers may be enantiomers or diastereomers depending on whether they have nonsuperimposable mirror images or not.

Answer to Problem 5.71P
The molecules are unrelated.
Explanation of Solution
The structures of the molecules are:
The molecules have different number of carbon atoms, nine and eight, respectively.
Therefore, they are unrelated molecules.
Molecules with different molecular formulas are unrelated.
(e)
Interpretation:
The specific type of relationship between the molecules in the given pair is to be determined.
Concept introduction:
If two molecules have different molecular formulas, they are unrelated. If they have the same molecular formula, they may be the same molecule or isomers. If the two can be interconverted by rotation about a bond, they are conformers. If they have different connectivity of atoms, they are constitutional isomers. If they have the same connectivity, but are not conformers, they must be stereoisomers. Stereoisomers may be enantiomers or diastereomers depending on whether they have nonsuperimposable mirror images or not.

Answer to Problem 5.71P
The two molecules are enantiomers.
Explanation of Solution
The structures of the two molecules are:
The chemical formulas of both molecules are the same,
The nitrogen atom in each molecule is bonded to four different groups;
The specific relation between the two isomers can be determined from the configuration at the nitrogen atom.
The priorities of
In the first molecule, the 1 to 3 priority groups are arranged clockwise with the lowest priority H at the back. Therefore, the configuration at this nitrogen is R.
In the second molecule also, they are arranged clockwise, but with the lowest priority H in front. Therefore, the configuration at the nitrogen in second molecule is S.
Thus, they are enantiomer.
The molecules are enantiomers because they have different configurations and are the only chiral center.
(f)
Interpretation:
The specific type of relationship between the molecules in the given pair is to be determined.
Concept introduction:
If two molecules have different molecular formulas, they are unrelated. If they have the same molecular formula, they may be the same molecule or isomers. If the two can be interconverted by rotation about a bond, they are conformers. If they have different connectivity of atoms, they are constitutional isomers. If they have the same connectivity, but are not conformers, they must be stereoisomers. Stereoisomers may be enantiomers or diastereomers depending on whether they have nonsuperimposable mirror images or not.

Answer to Problem 5.71P
The two molecules are conformers.
Explanation of Solution
The structures of the molecules are:
The molecules have the same molecular formula and same connectivity. Therefore, they are either conformers or configurational isomers.
If rotation of one group in the first molecule about a single bond converts it to the other structure, then they must be conformers. If not, they would be configurational isomers.
Rotating C3 of first molecule about
Therefore, these two molecules are two conformers of the same molecule.
The two molecules are conformers as they differ from each other only by rotation about a single bond.
(g)
Interpretation:
The specific type of relationship between the molecules in the given pair is to be determined.
Concept introduction:
If two molecules have different molecular formulas, they are unrelated. If they have the same molecular formula, they may be the same molecule or isomers. If the two can be interconverted by rotation about a bond, they are conformers. If they have different connectivity of atoms, they are constitutional isomers. If they have the same connectivity, but are not conformers, they must be stereoisomers. Stereoisomers may be enantiomers or diastereomers depending on whether they have nonsuperimposable mirror images or not.

Answer to Problem 5.71P
The two molecules are enantiomers.
Explanation of Solution
Structures of the molecules are:
The molecules have the same formula and same connectivity. Therefore, they must be either conformers or configurational isomers. The exact relation between the two molecules can be determined from the configurations about the chiral centers in the two. Each molecule contains two chiral centers, C2 and C3.
The structures of both are shown with the lowest priority H atoms in the plane of the paper. Therefore, the molecules are rotated about the
The priorities of the four groups attached to C2 and C3 are then determined.
In the first molecule, on C2, chlorine is assigned the highest priority as it is the heaviest (highest
For C2, 1 to 3 priority groups are arranged clockwise with H at the back. On C3, 1 to 3 priority groups are arranged counterclockwise, but with H in the front. Therefore, the configurations are
A similar analysis shows that the configurations of the two chiral centers in second molecule are
Therefore, the two molecules are enantiomers.
Two molecules with multiple chiral centers are enantiomers if they have different configuration at each chiral center.
(h)
Interpretation:
The specific type of relationship between the molecules in the given pair is to be determined.
Concept introduction:
If two molecules have different molecular formulas, they are unrelated. If they have the same molecular formula, they may be the same molecule or isomers. If the two can be interconverted by rotation about a bond, they are conformers. If they have different connectivity of atoms, they are constitutional isomers. If they have the same connectivity, but are not conformers, they must be stereoisomers. Stereoisomers may be enantiomers or diastereomers depending on whether they have nonsuperimpoable mirror images or not. Molecules with multiple chiral centers are diastereomers if the configuration at some but not all centers is different.

Answer to Problem 5.71P
The two molecules are diastereomers.
Explanation of Solution
The structures of the molecules are:
The molecules have the same formulas and same connectivities. Therefore, they are stereoisomers. They are not interconverted by rotation about a single bond, therefore, they are not conformers.
The exact relation can then be determined from the configurations at the two chiral centers they contain.
The priorities assigned according to Cahn-Ingold-Prelog rules to the four groups on the chiral centers are as shown above.
In the first molecule, 1 to 3 priority groups on C2 are arranged clockwise with the lowest priority H at the back. 1 to 3 priority groups on C3 are arranged counterclockwise with the lowest priority H in the front. Therefore, the configurations of the chiral centers in the first molecule are
A similar analysis shows that the configurations of the chiral centers in the second molecule are
Therefore, these molecules are diastereomers.
Molecules containing multiple chiral centers are diastereomers if they differ in configuration at only some of the chiral centers.
Want to see more full solutions like this?
Chapter 5 Solutions
EBK ORGANIC CHEMISTRY: PRINCIPLES AND M
- CUE COLUMN NOTES (A. Determine Stereoisomers it has ⑤ Identify any meso B compounds cl Br cl -c-c-c-c-¿- 1 CI C- | 2,4-Dichloro-3-bromopentanearrow_forwardThe acid-base chemistry of both EDTA and EBT are important to ensuring that the reactions proceed as desired, thus the pH is controlled using a buffer. What percent of the EBT indicator will be in the desired HIn2- state at pH = 10.5. pKa1 = 6.2 and pKa2 = 11.6 of EBTarrow_forwardWhat does the phrase 'fit for purpose' mean in relation to analytical chemistry? Please provide examples too.arrow_forward
- For each of the substituted benzene molecules below, determine the inductive and resonance effects the substituent will have on the benzene ring, as well as the overall electron-density of the ring compared to unsubstituted benzene. Molecule Inductive Effects Resonance Effects Overall Electron-Density × NO2 ○ donating O donating O withdrawing O withdrawing O electron-rich electron-deficient no inductive effects O no resonance effects O similar to benzene E [ CI O donating withdrawing O no inductive effects Explanation Check ○ donating withdrawing no resonance effects electron-rich electron-deficient O similar to benzene © 2025 McGraw Hill LLC. All Rights Reserved. Terms of Use | Privacy Center Accesarrow_forwardUnderstanding how substituents activate Rank each of the following substituted benzene molecules in order of which will react fastest (1) to slowest (4) by electrophilic aromatic substitution. Explanation HN NH2 Check X (Choose one) (Choose one) (Choose one) (Choose one) © 2025 McGraw Hill LLC. All Rights Reserved. Terms of Use | Privacy Center Aarrow_forwardIdentifying electron-donating and electron-withdrawing effects on benzene For each of the substituted benzene molecules below, determine the inductive and resonance effects the substituent will have on the benzene ring, as well as the overall electron-density of the ring compared to unsubstituted benzene. Inductive Effects Resonance Effects Overall Electron-Density Molecule CF3 O donating O donating O withdrawing O withdrawing O no inductive effects O no resonance effects electron-rich electron-deficient O similar to benzene CH3 O donating O withdrawing O no inductive effects O donating O withdrawing Ono resonance effects O electron-rich O electron-deficient O similar to benzene Explanation Check Х © 2025 McGraw Hill LLC. All Rights Reserved. Terms of Use | Privacy Centerarrow_forward
- * Hint: Think back to Chem 1 solubility rules. Follow Up Questions for Part B 12. What impact do the following disturbances to a system at equilibrium have on k, the rate constant for the forward reaction? Explain. (4 pts) a) Changing the concentration of a reactant or product. (2 pts) b) Changing the temperature of an exothermic reaction. (2 pts) ofarrow_forwardDraw TWO general chemical equation to prepare Symmetrical and non-Symmetrical ethers Draw 1 chemical reaction of an etherarrow_forwardPlease help me with the following questions for chemistry.arrow_forward
- Organic Chemistry: A Guided InquiryChemistryISBN:9780618974122Author:Andrei StraumanisPublisher:Cengage LearningChemistry for Today: General, Organic, and Bioche...ChemistryISBN:9781305960060Author:Spencer L. Seager, Michael R. Slabaugh, Maren S. HansenPublisher:Cengage Learning

