Alcohols of Pharmaceutical Importance – PST05106 Pharmaceutical Organic Chemistry

NTA Level 5 • Semester 1 • PST05106

Alcohols of Pharmaceutical Importance

Pharmaceutical Organic Chemistry • Source Session/Topic 11
Full source-text version: all educational wording from the extracted learning source is retained; only presenter/tutor metadata and web-layout noise are removed, while formatting is improved for readability.

Session 11: Alcohols of Pharmaceutical Importance.

Total Session Time: 120 minutes

Prerequisites

None

Learning Tasks

By the end of this session students are expected to be able to:

• Define alcohols
• List alcohols and their isomers
• Explain nomenclature of alcohols
• Draw chemical structure of alcohols
• List chemical properties of alcohols
• Explain chemical reactions of alcohols

Resources Needed:

• Flip charts, marker pens, and masking tape.
• Black/white board and chalk/whiteboard markers.

SESSION OVERVIEW

|Step |Time |Activity/ |Content |

| | |Method | |

|1 |05 minutes |Presentation |Introduction, Learning Tasks |

|2 |10 minutes |Brainstorming |Definition of Alcohols |

| | |Presentation | |

|3 |15 minutes |Presentation |Alcohols and their Isomers |

|4 |15 minutes |Presentation |Nomenclature of Alcohols |

|5 |15 minutes |Presentation |Chemical Structure of Alcohols |

|6 |15 minutes |Presentation |Chemical Properties of Alcohols |

| | |Buzzing | |

|7 |35 minutes |Group |Chemical Reactions involving |

| | |discussion |Alcohols |

| | |Presentation | |

|8 |05 minutes |Presentation |Key Points |

|9 |05 minutes |Presentation |Evaluation |

SESSION CONTENTS.

STEP 1: Presentation of Session Title and Learning Tasks (5 minutes)

READ or ASK students to read the learning tasks and clarify

ASK students if they have any questions before continuing.

STEP 2: Definition of Alcohols (10 minutes).

|Activity: Brainstorming (5 minutes) |

| |

|Ask students to brainstorm on the following question: |

| |

|What are Alcohols? |

| |

|ALLOW few students to respond. |

| |

|WRITE their responses on the flip chart/ board. |

| |

|CLARIFY and SUMMARISE by using the content below |

• Alcohols are a family of organic compounds containing a hydroxyl (OH)

group bonded to an sp3 hybridized carbon atom.

• The general formula is CnH(2n+1)OH or R-OH.
• Alcohols are named in similar manner as in alkenes except that the suffix

–e from alkanes is replace by –ol.

• Alcohols are classified into three groups: primary, secondary, and

tertiary, depending on the carbon atom bonded to the – OH group.

• If the carbon atom is primary (bonded to one other carbon atom), the

compound is a primary alcohol.

• If the OH group is attached to a carbon atom that is joined to two other

carbon atoms, it is a secondary alcohol, and the carbon atom to which it

is attached is a secondary carbon atom.

• If the OH group is attached to a carbon atom that is joined to three

other carbon atoms, it is a tertiary alcohol, and the carbon atom to

which it is attached is a tertiary carbon atom.

Primary alcohols

[pic]

[pic]

[pic]

STEP 3: Alcohols and their Isomers (15 Minutes).

• Alcohols exhibit following three types of isomerism.

o Chain isomerism.

o Position isomerism.

o Functional isomerism.

Chain isomerism

• Alcohols containing at least 4-carbon atoms form chain isomerism due

to the different structure of C-skeleton in the longest chain.

[pic]

Position isomerism

• Alcohols containing at least 3 C atoms form position isomerism due to

a different position of a hydroxyl group (OH).

Example

[pic]

Functional isomer

• Alcohols containing at least 2 carbon atoms give functional isomers.

The functional isomer of an alcohol is ether.

Example

[pic]

STEP 4: Nomenclature of Alcohols (15 minutes).

• The IUPAC system provides unique names for alcohols, based on rules that

are similar to those for other classes of compounds.

• In general, the name carries the -ol suffix, together with a number to

give the location of the hydroxyl group

Rules

1. Select the longest continuous carbon atom chain containing the carbinol

(hydroxyl) group(s).

2. Number the chain, giving the hydroxyl (alcohol) substituent(s) the

lowest number possible.

3. Name the longest chain as an alkane, but drop the terminal -e and add

-ol. Ethane would become ethanol.

4. For monohydric alcohols the letter ‘-e’ at the end of the root name is

replaced by the ending ‘-ol’ with a number, when necessary, to show the

position of the –OH group on the carbon skeleton.

[pic]

5. If more than one hydroxyl group is present (for polyols i.e.

dihydric,trihydric etc.) the name becomes -diol, -triol, etc. and the

terminal -e in the parent name is not dropped from the alkane name.

But the letters ‘diol’ ‘triol’ etc & numbers 1,2,3 etc are added to the

ending to show how many –OH groups & their position

• For example ethane with two hydroxyl groups would become ethanediol.
• Since the hydroxyl groups could be on or different carbon atoms, one

needs to specify where the hydroxyl groups are attached.

• The name would be 1,2-ethanediol if the hydroxyl groups are on adjacent

(vicinal) carbon atoms.

• Updated nomenclature rules suggest that the position of substituent
attachment should precede the functional group name, e.g., ethane-1,2-

diol rather than 1,2-ethanediol.

6. Indicate by numbers the positions of other groups attached to the

parent chain

• OH group takes priority (even over -ene or -yne)

[pic]

• Considering the example below:

[pic]

• The complete IUPAC name is 1-bromo-3,3-dimethyl-2-butanol.
• The new IUPAC positioning of numbers would place the 2 next to the

group it locates (-ol), giving the name 1-bromo-3,3-dimethylbutan-2-

ol.

7. Cyclic alcohols are named using the prefix cyclo-; the hydroxyl

group is assumed to be on carbon number 1, C1.

[pic]

[pic]

STEP 5: Chemical Structure of Alcohols (15 minutes).

• Alcohols fall into different classes depending on how the -OH group is

positioned on the chain of carbon atoms. There are some chemical

differences between the various types.

Primary alcohols

• In a primary (1°) alcohol, the carbon atom that carries the -OH group

is only attached to one alkyl group. Some examples of primary alcohols

are shown below:

[pic]

• Notice that the complexity of the attached alkyl group is irrelevant.
• In each case there is only one linkage to an alkyl group from the CH2

group holding the -OH group.

• There is an exception to this. Methanol, CH3OH, is counted as a primary

alcohol even though there are no alkyl groups attached to the the -OH

carbon atom.

• Secondary alcohols

In a secondary (2°) alcohol, the carbon atom with the -OH group attached is

joined directly to two alkyl groups, which may be the same or different.

Examples include the following:

[pic]

• Tertiary alcohols
• In a tertiary (3°) alcohol, the carbon atom holding the -OH group is

attached directly to three alkyl groups, which may be any combination of

the same or different groups.

• Examples of tertiary alcohols are given below:

[pic]

STEP 6: Chemical Properties of Alcohols (15 minutes).

|Activity: Buzzing (5minutes) |

| |

|ASK students to pair up and buzz on the following question for 5 |

|minutes |

| |

|What are the chemical properties of Alcohols? |

| |

|ALLOW pairs to respond on the question |

| |

|WRITE their response on the flip chart/board |

| |

|CLARIFY and SUMMARIZE by using the content below |

The following are some chemical properties of alcohols

• Combustion

o Alcohols burns in oxygen to produce carbon dioxide and water. An

alcohol burns cleanly and easily and does not produce soot.

o It becomes increasingly more difficult to burn alcohols as the

molecules get bigger.

o The general molecular equation for the reaction is:

CnH2n+1OH + (1.5n)O2 → (n+1)H2O + nCO2

• Dehydration of Alcohol to alkene

o Dehydration of alcohols is done by heating with concentrated sulfuric

acid, which acts as the dehydrating agent, at 180°C.

o This reaction uses alcohols to produce corresponding alkenes and water

as byproduct.

[pic]

• Oxidation

o Primary alcohols (R-CH2-OH) can be oxidized either to aldehydes (R-

CHO) or to carboxylic acids (R-CO2H), while the oxidation of secondary

alcohols (R1R2CH-OH) normally terminates at the ketone (R1R2C=O)

stage.

o Tertiary alcohols (R1R2R3C-OH) are resistant to oxidation.

o e.g. oxidation of ethanol:

C2H5OH + [O] → CH3COOH + H2O

o Oxidation can be done by using oxidising agents such as acidified

potassium dichromate (VI), acidified potassium manganate (VII) etc

• Esterification

o Alcohols can be reacted with carboxylic acid to form esters.

[pic]

STEP 7: Chemical Reactions involving Alcohols (35 minutes).

|Activity: Small Group Discussion (15 minutes) |

| |

|DIVIDE students into small groups. |

| |

|ASK students to discuss in groups on the following questions. |

|What are the chemical reactions involving Alcohols? |

| |

|[pic]REFER Students to Book |

| |

|ALLOW students to discuss for 10 minutes. |

| |

|ALLOW each group to present for 5 minutes. |

| |

|CLARIFY and SUMMARIZE by using the contents below |

• Oxidation

o Oxidation products depend on whether the alcohol is 1o, 2o or 3o.

o In oxidation one or more hydrogen atoms are lost from the carbon

having OH group

o Primary and secondary alcohols are easily oxidized by a variety of

reagents, including chromium reagents, permanganate, nitric acid, and

even household bleach (NaOCl, sodium hypochlorite).

• Oxidation of Primary Alcohols

o Oxidation of a primary alcohol initially forms an aldehyde.

o Unlike a ketone, however, an aldehyde is easily oxidized further to

give a carboxylic acid.

[pic]

o Chromic acid generally oxidizes a primary alcohol all the way to the

carboxylic acid.

[pic]

o A better reagent for the limited oxidation of primary alcohols to

aldehydes is pyridinium chlorochromate (PCC), a complex of chromium

trioxide with pyridine and HCI.

[pic]

• Oxidation of Secondary Alcohols

o Secondary alcohols are easily oxidized to give excellent yields of

ketones.

o The chromic acid reagent is often best for laboratory oxidations of

secondary alcohols.

[pic]

[pic]

Example:

[pic]

• Resistance of Tertiary Alcohols to Oxidation

o Oxidation of tertiary alcohols is not an important reaction in organic

chemistry.

o Tertiary alcohols have no hydrogen atoms on the carbinol carbon atom,

so oxidation must take place by breaking carbon-carbon bonds.

o These oxidations require severe conditions and result in mixtures of

products.

[pic]

Summary of alcohol oxidations

[pic]

o Two other strong oxidants are potassium permanganate and nitric

acid.

o Both of these reagents are less expensive than the chromium

reagents, and both of them give byproducts that are less

environmentally hazardous than spent chromium reagents.

o Both permanganate and nitric acid oxidize secondary alcohols to

ketones and primary alcohols to carboxylic acids.

• Dehydration

o Dehydration requires an acidic catalyst to protonate the hydroxyl

group of the alcohol and convert it to a good leaving group.

o Loss of water, followed by loss of a proton, gives the alkene

o Dehydration results from E1 elimination of the protonated alcohol

o Example:

[pic]

o Alcohol dehydrations generally take place through the E1 mechanism.

o Protonation of the hydroxyl group converts it to a good leaving

group.

o Water leaves, forming a carbocation.

o Loss of a proton gives the alkene.

[pic]

[pic]

o Because the rate limiting step is formation of a carbocation, the

ease of dehydration follows from the ease of formation of

carbocations: 3° > 2° > 1

o As in other carbocation reactions, rearrangements are common.

• Esterification

o Alcohols can combine with many kinds of acids to form esters.

o When no type of acid is specified, the word ester is assumed to

mean a carboxylic ester, the ester of an alcohol and a carboxylic

acid.

o The reaction, called Fischer esterification, is characterized by

the combining of an alcohol and an acid (with acid catalysis) to

yield an ester plus water.

[pic]

o Under appropriate conditions, inorganic acids also react with

alcohols to form esters.

▪ To form these esters, a wide variety of specialized

reagents and conditions can be used.

[pic]

Acidity of alcohols: formation of alkoxides

• Alcohols are weak acids.
• The most acidic simple alcohols (methanol and ethanol) are about as

acidic as water, and most other alcohols are somewhat less acidic.

• A strong base can deprotonate an alcohol to yield an alkoxide ion (R−O−).
• For example, sodamide (NaNH2), a very strong base, abstracts the hydrogen

atom of an alcohol.

• Metallic sodium (Na) or potassium (K) is often used to form an alkoxide

by reducing the proton to hydrogen gas.

[pic]

• Alkoxides can be useful reagents.
• For example, the most common synthesis of ethers involves the attack of

an alkoxide ion on an alkyl halide.

• This method is called Williamson ether synthesis.

Summary of common reactions of alcohols

[pic]

STEP 8: Key Points (10 minutes)

• Alcohols are a family of organic compounds containing a hydroxyl (OH)

group bonded to an sp3 hybridized carbon atom.

• The general formula is CnH(2n+1)OH or R-OH.
• Alcohols are classified into three groups: primary, secondary, and

tertiary, depending on the carbon atom bonded to the – OH group.

• Alcohols shows chain, position and functional isomerism.
• Primary alcohols (R-CH2-OH) can be oxidized either to aldehydes (R-CHO)

or to carboxylic acids (R-CO2H), while the oxidation of secondary

alcohols (R1R2CH-OH) normally terminates at the ketone (R1R2C=O) stage
• Alcohols can combine with many kinds of acids to form esters.

STEP 9: Evaluation (10 minutes)

• What are alcohols?
• List three alcohols and their isomers
• How are alcohols classified?
• Draw chemical structure of tertiary alcohol
• What is Fischer esterification?

References

Ternay, A.L (1976). Contemporary Organic Chemistry. Philadelphia, United

States: W.B. Saunders Co.

Morrison R.T and Boyd R N (1997). Organic Chemistry (6th Ed.). New Delhi,

India: Prentice Hall of India

Graham Solomon et al (2014). Organic Chemistry (11th Ed.). New Jeysey,

United States: John Willey and Sons.

Nadendla R. R. (2005). Principles of Pharmaceutical Organic Chemistry. New

Delhi, India: MacMillan Publishers

Bruice Y (2013). Organic Chemistry (7th ed.). New York, United States:

Prentice Hall Pearson.

Delgado J. N. Et al (1998). Wilson and Gisvold's Textbook of Organic

Medicinal and Pharmaceutical Chemistry (10th Ed.). California, United

States: Lippincott Williams

Bhassin S.K, Gupta R.(2013). Pharmaceutical organic chemistry (E-book

Kindle edition). New Delhi, India: Elsevier Publishing Services

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