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PST Level 5 Semester 1

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05105 Rational Use of Medicines

Ethical Issues in Medicines Marketing and Promotion – PST05105 Rational Use of Medicines

NTA Level 5 • Semester 1 • PST05105 Ethical Issues in Medicines Marketing and Promotion Rational Use of Medicines • Source Session/Topic 14 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 14: Ethical Issues in Medicines Marketing and Promotion Total Session Time: 120 minutes Prerequisites • None Learning Tasks By the end of this session students are expected to be able to: • Give introduction of ethical issues in medicines marketing and promotion • List objectives of ethical issues in medicines marketing and promotion • Identify ethical issues in medicines marketing and promotion • Identify ethical issues in medicines marketing and advertisement Resources Needed: • Flip charts, marker pens, and masking tape • Black/white board and chalk/whiteboard markers SESSION OVERVIEW |Step |Time |Activity/ |Content | | | |Method | | |1 |5 Minutes |Presentation |Introduction, Learning Tasks | |2 |25 Minutes |Presentation |Introduction to Ethical Issues in | | | | |Medicines Marketing And Promotion | |3 |25 Minutes |Presentation |Objective of Ethical Criteria in | | | | |Medicines Marketing and Promotion | |4 |30 Minutes |Presentation |Ethical Issues in Medicines | | | |Buzzing |Marketing and Promotion | |5 |25 Minutes |Presentation |Ethical Issues in Medicines | | | | |Marketing and advertisement | |6 |05 Minutes |Presentation |Key Points | | 7 |05 Minutes |Presentation |Evaluation | SESSION CONTENTS STEP 1: Presentation of Session Title and Learning Tasks (05 Minutes) READ or ASK students to read the learning objectives and clarify ASK students if they have any questions before continuing. STEP 2: Introduction to Ethical Criteria in Medicines Marketing and Promotion (25 minutes) • Ethical issues for drug promotion should lay the foundation for proper behaviour concerning the promotion of medicinal drugs, consistent with the search for truthfulness and righteousness. • The criteria should thus assist in judging if promotional practices related to medicinal drugs are in keeping with acceptable ethical standards. • WHO ethical criteria for medicinal drug promotion of 1988 require promotion of prescription and over-the-counter drugs to contain reliable claims without misleading or unverifiable statements. • The ethical promotion of medicine is vital to the pharmaceutical industry’s mission of helping patients for better healthcare. • The pharmaceutical industry has an obligation and responsibility to provide accurate information about its products to healthcare professionals in order to establish a clear understanding of the appropriate use of medicines. • The criteria could be used by people in all walks of life; by governments; the pharmaceutical industry (manufacturers and distributors); the promotion industry (advertising agencies, market research organizations and the like)health personnel involved in the prescription, dispensing, supply and distribution of drugs; universities and other teaching institutions; professional associations; patients' and consumer groups. • There is evidence that drug utilization problems are increasing encountered in many developing countries due to unethical practices of medicine promotion. STEP 3: Objective of Ethical Criteria in Medicines marketing and Promotion (25 Minutes) The following are the objectives of ethical criteria for medicines marketing and promotion: • To support and encourage the improvement of health care through the rational use of medicinal drugs and discourage unethical practices. • To lay the foundation for proper behavior concerning the promotion of medicinal drugs, consistent with the search for truthfulness and righteousness. • To assist in judging if promotional practices related to medicinal drugs are in keeping with acceptable ethical standards. • To ensure that healthcare professionals have access to information they need and that medicines are prescribed and used in a manner that provides the maximum healthcare benefit to patients. STEP 4: Ethical Issues in Medicines Marketing and Promotion (30 minutes) |Activity: Buzzing (10 minutes) | |ASK students to pair up and buzz on the following question for 2 | |minutes | |What are the ethical criteria in medicines marketing and promotion? | |ALLOW few pairs to respond and let other pairs to add on points not | |mentioned | |WRITE their response on the flip chart/board | | | |CLARIFY and SUMMARIZE by using the content below | The following are the ethical criteria in medicines marketing and promotion • Healthcare professionals should not be influenced to prescribe, recommend, purchase, supply or administer a product because of any benefits offered (financial or otherwise). • Promotion should encourage the appropriate use of pharmaceutical products by presenting them objectively and without exaggeration. • Ethical criteria for Medicines marketing and Promotion call for promotion of prescription drugs, non-prescription drugs (over-the-counter drugs), traditional medicines and any other product promoted as a medicine to contain reliable claims without misleading statements. • The criteria also state that promotion should not contain omissions that could lead to health risks • The criteria state that promotion should not contain unverifiable statements or omissions likely to induce medically unjustifiable drug use or to give rise to undue risks. • They emphasize that promotion should not be disguised as educational or scientific activities. • Active promotion within a country should take place only with respect to drugs legally available in the country. • Promotion should be in keeping with national health policies and in compliance with national regulations. • All promotion making claims concerning medicinal drugs should be reliable, accurate, truthful, informative, balanced, up-to-date, and capable of substantiation and in good taste. • The word "safe" should only be used if properly qualified. Comparison of products should be factual, fair and capable of substantiation. • Promotional material should not be designed so as to disguise its real nature. • Scientific data in the public domain should be made available to prescribers and any other person entitled to receive it, on request, as appropriate to their requirements. • Promotion in the form of financial or material benefits should not be offered to or sought by health care practitioners to influence them in the prescription of drugs. • Scientific and educational activities should not be deliberately used for promotional purposes STEP 5: Ethical Issues

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05105 Rational Use of Medicines

Role of Pharmaceutical Personnel in Promoting Rational Use of Medicines 109 – PST05105 Rational Use of Medicines

NTA Level 5 • Semester 1 • PST05105 Role of Pharmaceutical Personnel in Promoting Rational Use of Medicines 109 Rational Use of Medicines • Source Session/Topic 15 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 15: Role of Pharmaceutical Personnel in Promoting Rational Use of Medicines 109 Background There is currently an ever increasing demand for pharmaceutical personnel in Tanzania. This is due to expanding investment in public and private pharmaceutical sector. Shortage of trained pharmaceutical human resource contributes to poor quality of pharmaceutical services and low access to medicines in the country (GIZ, 2012). Through Public-Private-Partnership (PPP) the Pharmacy Council (PC) together with Development Partners (DPs) in Germany and Pharmaceutical Training Institutions (PTIs)worked together to address the shortage of human resource for pharmacy by designing a project named “Supporting Training Institutions for Improved Pharmaceutical Services in Tanzania” in order to improve quality and capacity of PTIs in training, particularly of lower cadre pharmaceutical personnel. The Pharmacy Council formed a Steering committee that conducted a stakeholders workshop from18th to 22ndAugust 2014 in Morogoro to initiate the implementation of the project. Key activities in the implementation of this project included carrying out situational analysis, curriculum review and harmonization, development of training manual/facilitators guide, development of assessment plan, training of trainers and supportive supervision. After the curricula were reviewed and harmonized, the process of developing standardized training materials was started in August 2015 through Writer’s Workshop (WW) approach. The approach included two workshops (of two weeks each) for developing draft documents and a one-week workshop for reviewing, editing and formatting the sessions of the modules. The goals of Writers Workshops were to build capacity of tutors in the development of training materials and to develop high-quality, standardized teaching materials. The training package for pharmacy cadres includes a Facilitator Guide, Assessment plan and Practicum. There are 12 modules for NTA level 4 making 12 Facilitator guides and one Practicum guide. Acknowledgment The development of standardized training materials of a competence-based curriculum for pharmaceutical sciences has been accomplished through involvement of different stakeholders. Special thanks go to the Pharmacy Council for spearheading the harmonization of training materials in the pharmacy after noticing that training institutions in Tanzania were using different curricula and train their students differently. I would also like to extend my gratitude to Christian Social Service Commission (CSSC) for their tireless efforts to mobilize funds from development partners. Special thanks to Multi Actors Partnership (MAP) for the financial and technical support. Particular thanks are due to those who led this important process to its completion, Centre for Education Development in Health Arusha (CEDHA), Ms. Diana Gamuya, Mr. Dickson Mtalitinya and Members from the secretariat of National Council for Technical Education (NACTE) for facilitating the process. Finally, I very much appreciate the contributions of the tutors and content experts representing PTIs, hospitals, and other health training institutions. Their participation in meetings and workshops, and their input in the development of this training manual/facilitators guide have been invaluable. These participants are listed with our gratitude below: Ms. Elizabeth Shekalaghe Registrar, Pharmacy Council of Tanzania Dr. Catherine Jincen Principal, CEDHA Dr. Saitore Laizer Deputy Principal, CEDHA Dr. Sungwa N. Kabissi Project Manager – MAP, CSSC Ms. Diana Gamuya CEDHA Ms. Emily Mwakibolwa Pharmacy Council Ms. Tumaini H. Lyombe MUHAS Ms. Dilisi J. Makawia KSP Director of Human Resources Development Ministry of Health, Community Development, Gender, Elderly and Children Introduction Module Overview This module content is a guide for tutors of Pharmaceutical schools for training of students. The session contents are based on sub-enabling outcomes and their related tasks of the curriculum for Basic Technician Course in Pharmaceutical Sciences. The module sub-enabling outcomes and their related tasks are as indicated in the in the Basic Technician Certificate in Pharmaceutical Sciences (NTA Level 5) Curriculum Target Audience This module is intended for use primarily by tutors of pharmaceutical schools. The module’s sessions give guidance on the time, activities and provide information on how to teach the session. The sessions include different activities which focus on increasing students’ knowledge, skills and attitudes. Organization of the Module The module consists of fifteen (15) sessions; each session is divided into several parts as indicated below: • Session Title: The name of the session • Total Session Time: The estimated time for teaching the session, indicated in minutes • Pre-requisites: A module or session which needs to be covered before teaching the session. • Learning Tasks: Statements which indicate what the student is expected to learn by the end of the session • Resources Needed: All resources needed for the session are listed including handouts and worksheets • Session Overview: The session overview box lists the steps, time for each step, the activity or method used in each step and the step title • Session Content: All the session contents are divided into steps. Each step has a heading and an estimated time to teach that step as shown in the overview box. Also, this section includes instructions for the tutor and activities with their instructions to be done during teaching of the contents • Key Points: Key messages for concluding the session contents at the end of a session This step summarizes the main points and ideas from the session, based on the learning tasks of the session • Evaluation: The last section of the session consists of short questions based on the learning tasks to check the understanding of students. • Handouts: Additional information which can be used in the classroom while teaching or later for students’ further learning. Handouts are used to provide extra information related to the session topic that cannot fit into the session time. Handouts can be used by the students to study material on their own and to refer to them after the session. Sometimes, a handout will have questions or an exercise for the participants including the answers to the questions. Instructions

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05106 Pharmaceutical Organic Chemistry

Introduction to Pharmaceutical Organic Chemistry – PST05106 Pharmaceutical Organic Chemistry

NTA Level 5 • Semester 1 • PST05106 Introduction to Pharmaceutical Organic Chemistry Pharmaceutical Organic Chemistry • Source Session/Topic 1 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 1: Introduction to Pharmaceutical Organic Chemistry. Total Session Time: 120 minutes Prerequisites: PST 04210 Inorganic Chemistry Learning Tasks By the end of this session students are expected to be able to: • Define pharmaceutical organic chemistry • List characteristics of organic compounds • Explain the importance of organic chemistry in pharmacy 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 |15 minutes |Buzzing. |Definition of Pharmaceutical Organic| | | |Presentation. |Chemistry. | |3 | |Brainstorming.| | | |35 minutes |Presentation. |Characteristics of Organic | | | | |Compounds. | |4 |45 minutes |Group |Importance of Organic Chemistry in | | | |discussion. |Pharmacy. | | | |Presentation. | | |5 |10minutes |Presentation |Key Points | | 6 |10 minutes |Presentation |Evaluation | SESSION CONTENT. 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 Pharmaceutical Organic Chemistry (15 minutes) |Activity: Buzzing (5 minutes) | | | |Ask students to brainstorm on the following question: | | | |What is a pharmaceutical Organic Chemistry? | | | |ALLOW few students to respond. | | | |WRITE their responses on the flip chart/ board. | | | |CLARIFY and SUMMARISE by using the content below. | • Organic Chemistry is the branch of Chemistry which deals with the study of carbon and its compounds. o However, carbon monoxide, carbon dioxide, carbonates, hydrogen carbonates, carbides and cyanides are excluded. • Pharmaceutical Organic Chemistry is the study of all substances containing carbon which are involved with design, chemical synthesis and development of bioactive molecules (drugs). • Two aspects are involved o Medicinal Chemistry – which is devoted to discovery and development of new agents for treating diseases. o Biochemistry – study of the cell & analysis of its structure to identify factors necessary for life of every cell. • Occurrence of Carbon and Sources of Organic Compounds. o Carbon is the principle element in organic compounds; most also contain hydrogen and others contain the halogens, nitrogen, oxygen, phosphorus, sulphur etc. o Occurs widely in carbohydrates, proteins, fats, vitamins, nucleic acids, hormones and synthetic materials such as drugs, ink and dyes. o Major sources are petroleum, coal and natural gases. o Other sources include wood, oils and agricultural waste products o Biggest source of organic compounds – plants & animals • The Unique Nature of Carbon o Ability to catenate ▪ Carbon atoms link together to form chains of varying length, branched chains and rings of different sizes o Ability to form four strong single covalent bonds (tetravalency) ▪ Each carbon atom has four unpaired electrons when excited, as a 4A element in the periodic table, it can share 4 valence electrons – tetravalent, Tend to form four strong covalent bonds o Ability to Form Multiple Bonds ▪ Carbon atom has the ability to form the multiple bonds links with itself. ▪ There two categories of multiple bond (i) double bonds eg C=C (ii) triple bonds eg C≡C. ▪ The compounds formed in this way have different properties from compounds of the same elements but single bond. o Carbon atom can vary in oxidation state from -4 to +4 CH4 Carbon oxidation number -4 CCl4 Carbon oxidation number +4 STEP 3: Characteristics of Organic Compounds (35 minutes). |Activity: Brainstorming (10minutes) | | | |ASK students to pair up and buzz on the following question for 5 | |minutes | | | |What are the characteristics of organic compounds? | | | |ALLOW pairs to respond on the question | | | |WRITE their response on the flip chart/board | | | |CLARIFY and SUMMARIZE by using the content in the table 1 below | The following are the characteristics of organic compounds • Covalent nature o Carbon atom from strong covalent bonds with one another, most organic compounds are stable because of the strong carbon -carbon bonds, since they have a covalent nature they do not ionizes in solution and are non-conductors of electricity. • Polarity and solubility of non-polar compounds o Carbon-hydrogen bonds are non-polar like carbon-carbon bonds; this is because of the almost equal electro negativities of the two elements. o Most of the organic compounds are non-polar unless the compounds consist of very electronegative elements like chlorine or groups like the hydroxyl group, they cannot therefore form bonds with water molecules (insoluble in water). o If an organic compound contain polar groups hydrogen bond can form between polar group in the molecule of organic compound and the water molecule. o For the example ethanol molecule contains a hydroxyl group which is polar, so it is soluble in water. • Low melting and boiling points o Organic compounds generally have low melting and boiling points than inorganic compounds; this is because these compounds possess relatively weak intermolecular bonds which can easily broke by heat energy. • Thermal instability o Many organic compounds are; thermally unstable, decomposing into simpler molecules when heated to temperature above 5000C. o However, this property is sometimes of commercial importance as in the cracking of petroleum. o This property is very useful in the fractional distillation of crude oils. • Flammability o Most organic compounds are flammable (catch fire easily) and burn exothermically in a plentiful supply of air to yield carbon (IV) oxide and water. o Thus, most fuels such as woods, coal, oil, petrol and natural gas are organic, and their combustion provides our main source of heat energy. • Reactivity o Reactions involving organic

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05106 Pharmaceutical Organic Chemistry

Classification of Organic Compounds – PST05106 Pharmaceutical Organic Chemistry

NTA Level 5 • Semester 1 • PST05106 Classification of Organic Compounds Pharmaceutical Organic Chemistry • Source Session/Topic 2 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 2: Classification of Organic Compounds. Total Session Time: 60 minutes Prerequisites • None Learning Tasks By the end of this session students are expected to be able to: • Classify organic compounds 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 |40 minutes |Presentation |Classification of Organic compounds | | | |Group | | | | |Discussion | | |3 |05 minutes |Presentation |Key Points | | 4 |10 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: Classification of Organic Compounds (40 minutes) | | |Activity: Small Group Discussion (20 minutes). | | | |DIVIDE students into small manageable groups. | | | |ASK students to discuss on the following question. | |How do we classify Organic Compounds? | | | |ALLOW students to discuss for 15 minutes. | | | |ALLOW few groups to present and the rest to add points not mentioned. | | | |CLARIFY and SUMMARIZE by using the contents below | • Organic compounds are classified as follows: o Acyclic or open chain compounds, o Alicyclic or closed chain or ring compounds, o Aromatic compounds and o Heterocyclic aromatic compounds Acyclic or open chain compounds: o These compounds are also known as aliphatic compounds, they have branched or straight chains. Following are the examples in this category. [pic] • Alicyclic or closed chain or ring compounds: o These are cyclic compounds which contain carbon atoms connected to each other in a ring (homocyclic). o When atoms other than carbon are also present then it is called as heterocyclic. Examples of this type are as follows: [pic] • Aromatic compounds o They are a special type of compounds which contain benzene and other ring related compounds. o Similar to alicyclic, they can also have heteroatoms in the ring. o Such compounds are called as heterocyclic aromatic compounds. o Some of the examples are as follows: ▪ Benzenoid aromatic compounds [pic] ▪ Non-benzenoid aromatic compounds [pic] Eg Tropolone • Heterocyclic aromatic compounds [pic] • Organic compounds are also classified as saturated and unsaturated hydrocarbons. o Hydrocarbons are compounds containing carbon and hydrogen o Saturated hydrocarbons are those in which adjacent carbon atoms are joined by a single covalent bond and all other bonds are satisfied by hydrogen. o Unsaturated hydrocarbons have at least two carbon atoms that are joined by more than one covalent bond and all remaining bonds are satisfied by hydrogen. [pic] [pic] Fig.1. Diagrammatic Classification of Organic Compounds [pic] STEP 3: Key Points (05 minutes). • Organic compounds are classified as Acyclic or open chain compounds, Alicyclic or closed chain or ring compounds, Aromatic compounds and Heterocyclic aromatic compounds. • Organic compounds are also classified as saturated and unsaturated hydrocarbons. STEP 4: Evaluation (10 minutes). • What are Acyclic or open chain compounds? • What are Alicyclic or closed chain or ring compounds? • What are Aromatic compounds? • What are Heterocyclic aromatic compounds? • What are saturated and unsaturated hydrocarbons? 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. Rama R. N. (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 ← Previous TopicNext Topic →View all Pharmaceutical Organic Chemistry topicsOpen Complete Full Notes PDF / OFFLINE NOTES Unataka kutumiwa notes hizi kupitia WhatsApp?Kwa notes zilizopangiliwa vizuri kwa kusoma offline au PDF, bonyeza kitufe hapa chini. Ujumbe wenye Level, Semester, Module na Topic utaandaliwa moja kwa moja.TUMIWA NOTES WHATSAPP WhatsApp: 255620339260

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05106 Pharmaceutical Organic Chemistry

Classification of Drugs According to Their Chemical Nature – PST05106 Pharmaceutical Organic Chemistry

NTA Level 5 • Semester 1 • PST05106 Classification of Drugs According to Their Chemical Nature Pharmaceutical Organic Chemistry • Source Session/Topic 3 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 3: Classification of Drugs According to Their Chemical Nature. Total Session Time: 60 minutes Prerequisites • None Learning Tasks By the end of this session students are expected to be able to: • Classify drugs according to their chemical nature 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 | |Presentation |Classification of Drugs According to| | |45 minutes |Small group |Their Chemical Nature | | | |discussion | | |3 |05 minutes |Presentation |Key Points | | 4 | |Presentation |Evaluation | | |05 minutes | | | 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: Clasification of Drugs According to Their Chemical Nature (45 minutes). |Activity: Small Group Discussion (20 minutes) | | | |DIVIDE students into small manageable groups | | | |ASK students to discuss on the following question | |How do you classify drugs according to their chemical nature? | | | |ALLOW students to discuss for 15 minutes | | | |ALLOW few groups to present and the rest to add points not mentioned | | | |CLARIFY and SUMMARIZE by using the contents below | Chemically, drugs are classified as follows: • Inorganic drugs This includes: o Metals and their salts (ferrous sulphate, zinc sulphate and magnesium sulphate) o Non-metals such as sulphur • Organic drugs They include the following: o Alkaloids; examples are atropine, strychnine and morphine o Glycosides; examples are digitoxin and digoxin o Proteins; examples are oxytocin and insulin o Esters, amides, alcohols, glycerides, carboxylic acids, phenols STEP 4: Key Points (5 minutes). • Drugs are classified chemically as Inorganic and organic drugs. • Inorganic drugs include metal and their salts and non-metals. • Organic drugs include alkaloids, glycosides, proteins, esters and amides STEP 5: Evaluation (5 minutes). • How are drugs classified according to their chemical nature? 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. Rama R. N. (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.). Calfornia, United States: Lippincott Williams Bhassin S.K, Gupta R.(2013). Pharmaceutical organic chemistry (E-book Kindle edition). New Delhi, India: Elsevier Publishing Services ← Previous TopicNext Topic →View all Pharmaceutical Organic Chemistry topicsOpen Complete Full Notes PDF / OFFLINE NOTES Unataka kutumiwa notes hizi kupitia WhatsApp?Kwa notes zilizopangiliwa vizuri kwa kusoma offline au PDF, bonyeza kitufe hapa chini. Ujumbe wenye Level, Semester, Module na Topic utaandaliwa moja kwa moja.TUMIWA NOTES WHATSAPP WhatsApp: 255620339260

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05106 Pharmaceutical Organic Chemistry

Nomenclature of Organic Compounds – PST05106 Pharmaceutical Organic Chemistry

NTA Level 5 • Semester 1 • PST05106 Nomenclature of Organic Compounds Pharmaceutical Organic Chemistry • Source Session/Topic 4 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 4: Nomenclature of Organic Compounds. Total Session Time: 120 minutes Prerequisites • None Learning Tasks By the end of this session students are expected to be able to: • Define nomenclature of organic compounds • Explain nomenclature of organic compounds 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 |Buzzing |Definition of Nomenclature of | | | |Presentation |Organic Compounds | |3 |85 minutes |Group |Nomenclature of organic compounds | | | |discussion | | | | |Presentation | | |4 |10 minutes |Presentation |Key Points | | 5 |10 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 Nomenclature of Organic Compounds (10 Minutes). |Activity: Buzzing (5 minutes) | | | |Ask students to brainstorm on the following question: | | | |What is nomenclature of organic compounds? | | | |ALLOW few students to respond | | | |WRITE their responses on the flip chart/ board | | | |CLARIFY and SUMMARISE by using the content below | • Nomenclature is the act or a system of naming. • IUPAC nomenclature of organic chemistry is a systematic method of naming organic chemical compounds as recommended by the International Union of Pure and Applied Chemistry (IUPAC). STEP 3: Nomenclature of organic compounds (85 minutes). |Activity: Small Group Discussion (20 minutes). | | | |DIVIDE students into small manageable groups. | | | |ASK students to discuss on the following question | |What are the rules for naming organic compounds? | | | |ALLOW students to discuss for 15 minutes. | | | |ALLOW few groups to present and the rest to add points not mentioned. | | | |CLARIFY and SUMMARIZE by using the contents below. | The following are the rules that are followed in naming organic compounds 1. Identification of the parent chain. This chain must obey the following rules, in order of precedence: i. It should have the maximum number of substituents of the suffix functional group. By suffix, it is meant that the parent functional group should have a suffix, unlike halogen substituents. If more than one functional group is present, the one with highest precedence should be used. ii. It should have the maximum number of multiple bonds. iii. It should have the maximum number of single bonds. iv. It should have the maximum length. 2. Identification of the parent functional group, if any, with the highest order of precedence. 3. Identification of the side-chains. Side chains are the carbon chains that are not in the parent chain but are branched off from it. 4. Identification of the remaining functional groups, if any, and naming them by their ionic prefixes (such as hydroxy for -OH, oxy for =O, oxyalkane for O-R, etc.). Different side-chains and functional groups will be grouped together in alphabetical order. (The prefixes di-, tri-, etc. are not taken into consideration for grouping alphabetically. For example, ethyl comes before dihydroxy or dimethyl, as the "e" in "ethyl" precedes the "h" in "dihydroxy" and the "m" in "dimethyl" alphabetically. The "di" is not considered in either case). When both side chains and secondary functional groups are present, they should be written mixed together in one group rather than in two separate groups. 5. Identification of double/triple bonds. 6. Numbering of the chain. This is done by first numbering the chain in both directions (left to right and right to left), and then choosing the numbering which follows these rules, in order of precedence i. Has the lowest-numbered locant (or locants) for the suffix functional group. Locants are the numbers on the carbons to which the substituent is directly attached. ii. Has the lowest-numbered locants for multiple bonds (The locant of a multiple bond is the number of the adjacent carbon with a lower number). iii. Has the lowest-numbered locants for prefixes. 7. Numbering of the various substituents and bonds with their locants. If there is more than one of the same type of substituent/double bond, a prefix is added showing how many there are ( di – 2 tri – 3 tetra – 4 then as for the number of carbons below with 'a' added) • The numbers for that type of side chain will be grouped in ascending order and written before the name of the side-chain. If there are two side-chains with the same alpha carbon, the number will be written twice. Example: 2,2,3-trimethyl- . If there are both double bonds and triple bonds, "en" (double bond) is written before "yne" (triple bond). • When the main functional group is a terminal functional group (a group which can exist only at the end of a chain, like formyl and carboxyl groups), there is no need to number it. 1. Arrangement in this form: Group of side chains and secondary functional groups with numbers made in step 3 + prefix of parent hydrocarbon chain (eth, meth) + double/triple bonds with numbers (or "ane") + primary functional group suffix with numbers. Wherever it says "with numbers", it is understood that between the word and the numbers, the prefix(di-, tri-) is used. 2. Adding of punctuation: i. Commas are put between numbers (2 5 5 becomes 2,5,5) ii. Hyphens are put between a number and a letter (2 5 5 trimethylheptane becomes 2,5,5-trimethylheptane) iii. Successive words are merged into one word (trimethyl heptane becomes trimethylheptane) Note: IUPAC uses one-word names throughout. This is

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05106 Pharmaceutical Organic Chemistry

General Properties of Organic Compounds – PST05106 Pharmaceutical Organic Chemistry

NTA Level 5 • Semester 1 • PST05106 General Properties of Organic Compounds Pharmaceutical Organic Chemistry • Source Session/Topic 5 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 5: General Properties of Organic Compounds. Total Session Time: 120 minutes + 10 minutes home assignment. Prerequisites None Learning Tasks By the end of this session students are expected to be able to: • List physical properties of organic compounds • Explain the general properties of organic compounds 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 |25 minutes |Buzzing |Physical Properties of Organic | | | |Presentation |Compounds | |3 |60 minutes |Small group |General properties of Organic | | | |discussion |Compounds | | | |Presentation | | |4 |10 minutes |Presentation |Key Points | |5 | |Presentation |Evaluation | | |10 minutes | | | |6 |10 minutes |Presentation |Take Home Assignment | 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: Physical Properties of Organic Compounds (25 minutes). |Activity: Buzzing (10minutes) | | | |ASK students to pair up and buzz on the following question for 5 | |minutes. | | | |What are the physical properties of organic compounds? | | | |ALLOW pairs to respond on the question. | | | |WRITE their response on the flip chart/board. | | | |CLARIFY and SUMMARIZE by using the content in the table 1 below. | The following are the physical properties of organic compounds; Melting Point. • It usually indicates the temperature in which a state of a compound changes from solid to liquid state. • There are few factors that affect the melting point such as: o Size of a molecule: ▪ Melting Point identifies the characteristics of an organic compound. ▪ Two different compounds consisting of a variant structural arrangement of atoms or possess different configurations will have difference of melting point. ▪ Two samples possessing same melting point will have same configurations. o Force of attraction between the molecules: ▪ Melting point of a compound is usually affected by the force of attraction between the molecules. ▪ The existence of hydrogen bonds in organic compounds will result to a higher melting point. Boiling Point: • Boiling Point varies depending on the surrounding environment. • A boiling point of a liquid is high at high pressure and has a lower boiling point when atmospheric pressure is low. • Factors that affect boiling point and they are stated below. o Polarity: Greater the polarity the higher the boiling point, that is, polarity determines the force of attraction between the molecules. Molecules are attracted by opposite charges in a polar compound. o Carbon-carbon chain: Boiling point decreases with the increase in the length of a carbon-carbon chain. o Strength of Intermolecular forces: Various effects such as Vander Waals dispersion hydrogen – bonding. Ionic bonding will affect the strength of intermolecular forces. Solubility • Organic compounds may dissolve in solvents like mixture, ethyl alcohol or white spirits. Flammability and vapour pressure • Flammability is a measure of how easy it would be for a substance to catch alight and burn. • When a substance is in the liquid or solid state there will be some molecules in the gas state. The weaker the intermolecular forces within a substance the higher the vapour pressure will be. • Compounds with higher vapour pressures have lower flash points and are therefore more flammable. STEP 3: General properties of organic compounds (60 minutes). |Activity: Small Group Discussion (20 minutes) | | | |DIVIDE students into small manageable groups. | | | |ASK students to discuss on the following question; | |What are the general properties of organic compounds? | | | |ALLOW students to discuss for 15 minutes. | | | |ALLOW few groups to present and the rest to add points have not been | |mentioned. | | | |CLARIFY and SUMMARIZE by using the contents below | • An understanding of the various types of noncovalent forces allows us to explain, on a molecular level, many observable physical properties of organic compounds. • Factors that influence physical properties of organic compound are: o Intermolecular forces o Type of function group o Chain length o Shape of the molecule • Intermolecular forces are forces that exist between molecules. They include; o Van der waals forces –dipole-dipole forces ▪ -induced dipole-induced dipole forces (London dispersion forces) o Hydrogen bonding. Flammability • Flammability is a measure of how easy it would be for a substance to catch alight and burn. The flash point of a substance is the lowest temperature that is likely to form a gaseous mixture you could set alight. • If a liquid has a low enough flash point it is considered flammable (able to be ignited easily) while those with higher flash points are considered nonflammable. • A substance that is classified as nonflammable can still be forced to burn, but it will not ignite easily. Vapor pressure • When a substance is in the liquid or solid state there will be some molecules in the gas state. These molecules have enough energy to overcome the intermolecular forces holding the majority of the substance in the liquid or solid phase • These gas molecules exert a pressure on the liquid or solid (and the container) and that pressure is the vapour pressure of that compound • The weaker the intermolecular forces within a substance the higher the vapour pressure will be • Compounds with higher vapour pressures have lower flash points and are therefore more flammable Solubility Solubility is a chemical property referring to

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05106 Pharmaceutical Organic Chemistry

Chemical Reaction in Organic Compounds – PST05106 Pharmaceutical Organic Chemistry

NTA Level 5 • Semester 1 • PST05106 Chemical Reaction in Organic Compounds Pharmaceutical Organic Chemistry • Source Session/Topic 6 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 6: Chemical Reaction in Organic Compounds. Total Session Time: 60 minutes Prerequisites • None Students Learning Tasks By the end of this session students are expected to be able to: • Define term chemical reaction • List types of chemical reactions in organic compounds • Explain chemical reactions in organic compounds 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 |15 minutes |Presentation |Definition of the term chemical | | | |Buzzing |reaction | |3 | |Group |Types of chemical reactions | | |30 minutes |discussion |involving organic compounds | | | |Presentation | | |4 |05 minutes |Presentation |Key Points | |5 | | Presentation |Evaluation | | |05 minutes | | | 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 Chemical Reaction (15 minutes) |Activity: Buzzing (10minutes) | | | |ASK students to pair up and buzz on the following question for 5 | |minutes | | | |What is chemical reaction? | | | |ALLOW pairs to respond on the question | | | |WRITE their response on the flip chart/board | | | |CLARIFY and SUMMARIZE by using the content in the table 1 below | Definition • A chemical reaction is process in which a substance is transformed into a new substance through chemical change, OR • Chemical reactions, a process in which one or more substances, the reactants, are converted to one or more different substances, the products, substances are either chemical elements or compounds. • A chemical reaction rearranges the constituent atoms of the reactants to create different substances as products. STEP 3: Types of Chemical Reactions Involving Organic Compounds (30 minutes). |Activity: Small Group Discussion (20 minutes) | | | |DIVIDE students into small manageable groups. | |ASK students to discuss on the following question. | | | |What are the types of chemical reactions involving organic compounds? | | | |ALLOW students to discuss for 15 minutes | |ALLOW few groups to present for 5 minutes and the rest to add points | |not mentioned. | | | |CLARIFY and SUMMARIZE by using the contents below | There are five main types of organic reactions that can take place. They are as follows: • Substitution reactions • Elimination reactions • Addition reactions • Radical reactions • Oxidation-Reduction Reactions Let us study each of these reactions in detail, to understand more about them. [pic] • Substitution Reactions o In a substitution reaction, one atom or a group of atoms take place of another atom or a group of atoms which leads to the formation of an altogether new substance. o We can take an example of C – Cl bond, in which the carbon atom usually has a partial positive charge due to the presence of highly electronegative chlorine atoms. o In a nucleophilic substitution reaction, it is important that the nucleophile must have a pair of electrons and it also should have a high affinity for the electropositive species in comparison to the substituent which was originally present in the element. o In order for the substitution reaction to occur, there are certain conditions that have to be present such as maintaining low temperatures same as room temperature. • Elimination Reactions o These are reactions which involve the elimination and removal of the adjacent atoms. o After these multiple bonds are simultaneously formed and there is a release of small molecules as product. o One of the examples of a typical elimination reaction is the conversion of ethyl chloride to ethylene. o CH3CH2Cl → CH2= CH2 + HCl o In the above reaction, the eliminated molecule is HCl, which can form out of the combination of H+ from the carbon atom which is on the left side and Cl– from the carbon atom which is on the right side. • Addition Reactions o An addition reaction is simply just the opposite of an elimination reaction. o In an addition reaction, the components or molecules of A and B are added to the carbon-carbon multiple bonds and this is called an addition reaction. o In the reaction given below when HCl is added to ethylene, it will give us ethylene chloride. HCl + CH2 = CH2 → CH3CH2Cl • Radical Reactions o Most of the organic reactions involve radicals and their movement. o Addition of a halogen to a typically saturated hydrocarbon involves free radical mechanism. o There are usually three stages involved in a radical reaction which are; ▪ initiation ▪ propagation ▪ termination o Initially when the weak bond is broken initiation of the reaction takes place with the formation of free radicals. o After that when the halogen is added to the hydrocarbon a radical is produced and finally, it gives alkyl halide. • Oxidation Reduction reactions (REDOX) o Electrons in an organic redox reaction often are transferred in the form of a hydride ion – a proton and two electrons. o Because they occur in conjunction with the transfer of a proton, these are commonly referred to as hydrogenation and dehydrogenation reactions: a hydride plus a proton adds up to a hydrogen (H2) molecule. o When a carbon atom in an organic compound loses a bond to hydrogen and gains a new bond to a heteroatom (or to another carbon), this means the compound has been dehydrogenated, or oxidized. o A very common biochemical example is the oxidation of an alcohol to a

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05106 Pharmaceutical Organic Chemistry

Isomerism – PST05106 Pharmaceutical Organic Chemistry

NTA Level 5 • Semester 1 • PST05106 Isomerism Pharmaceutical Organic Chemistry • Source Session/Topic 7 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 7: Isomerism. Total Session Time: 60 minutes Prerequisites • None Learning Tasks By the end of this session students are expected to be able to: • Define isomer and isomerism • List types of isomers • Explain types of isomers • Explain the importance of isomerism in pharmacy 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 |15 minutes |Buzzing |Definition of Isomer and Isomerism | | | |Presentation | | |3 |40 minutes |Group |Types of Isomers | | | |discussion | | | | |Presentation | | |4 |40 minutes |Presentation |Importance of Isomerism in Pharmacy | | | |Brainstorming | | |5 |10 minutes |Presentation |Key Points | |6 | | Presentation |Evaluation | | |10 minutes | | | 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 Isomer and Isomerism (15 minutes). |Activity: Buzzing (10 minutes) | | | |ASK students to pair up and buzz on the following question for 5 | |minutes | | | |What is an isomer? | |What is isomerism? | |ALLOW pairs to respond on the question. | | | |WRITE their response on the flip chart/board. | | | |CLARIFY and SUMMARIZE by using the content in the table 1 below | • Isomers are compound having same molecular formula but different structural formula • Isomerism is the existence of a compound with the same molecular formula but different structural formula STEP 3: Types of Isomerism (40 minutes). |Activity: Small Group Discussion (20 minutes) | | | |DIVIDE students into small groups | | | |ASK students to discuss in groups on the following questions | |What are the types of isomerism | | | |[pic]REFER Students to Book | | | |ALLOW students to discuss for 15 minutes | | | |ALLOW each group to present for 5 minutes | | | |CLARIFY and SUMMARIZE by using the contents below | The following are the descriptions of types of isomerism; • Geometric isomerism • Structural isomerism • Constitutional isomerism • Sterioisomerism • Geometric isomerism. o Arises due to restricted rotation across the C-C double bonds. o Occurs only when two atoms/groups attached to each carbon of the double bond are different from one another. o This type of isomerism is also known as cis-trans isomerism. o The cis-isomer has like groups on the same side of the double bond, whereas the trans-isomer has like group on opposite sides of the double bond. Example, [pic] o Cis Butene (the methyl groups are on the same side) [pic] o Trans Butene (the methyl groups are on the opposite side) o Another way to name the cis-trans isomers is to use the Z and E nomenclature [pic] E E = Entgegen in German, Z = Zusammen, means together which means on opposite sides. • Structural isomerism. o These are Isomers which have the atoms of their molecules linked in a different order o The structural isomerism is further subdivided in the following categories; ▪ Chain Isomerism ▪ Positional Isomerism ▪ Functional Group Isomerism Chain Isomerism • Chain isomers are the compounds having the same molecular formula but different arrangement of carbon chain within the molecule. • Chain isomers are also known as skeletal isomers or nuclear isomers. • Chain isomers of the same compound are very similar. • There may be small difference in physical properties such as melting or boiling point due to different strengths of intermolecular bonding. • Their chemistry is likely to be identical. [pic] Positional Isomerism • Position isomers are the compounds which have the same molecular formula and same carbon skeleton but differ in the position of attached atoms or groups or in position of multiple bonds. • Positional isomers are also usually similar. • There are slight physical differences, but the chemical properties are usually very similar. • However, occasionally, positional isomers can have quite different properties. [pic] • A simple example of isomerism is given by propanol: • it has the formula C3H8O (or C3H7OH) and two isomers propan-1-ol (n- propyl alcohol; I) and propan-2-ol (isopropyl alcohol; II) • Note that the position of the oxygen atom differs between the two: it is attached to an end carbon in the first isomer and to the center carbon in the second. • The number of possible isomers increases rapidly as the number of atoms increases; for example, the next largest alcohol, named butanol (C4H10O), has four different structural isomers. [pic] Functional Group Isomers • Functional group isomers are the compounds having the same molecular formula but different functional groups. • Functional group isomers are likely to be both physically and chemically dissimilar. [pic] • Constitutional Isomerism. o Isomers that differ in connectivity are called constitutional (sometimes structural) isomers. o They have the same parts, but those parts are attached to each other differently. o The bracelets of red and green beads mentioned above are analogous to constitutional isomers. o The simplest hydrocarbons—methane (CH4), ethane (CH3CH3), and propane (CH3CH2CH3)—have no constitutional isomers, as there is no other way to connect the carbons and hydrogens of these molecules consistent with the tetravalency of carbon and the univalency of hydrogen. [pic] o However, there are two different butanes, C4H10, and these two molecules, called butane and isobutane, are constitutional isomers. o They are different molecules with different chemical and physical properties. o Butane has its four carbon atoms bonded in a continuous chain. Isobutane has a

Pharmaceutical Sciences Notes, PST Level 5 Semester 1, PST NTA Level 5, PST05106 Pharmaceutical Organic Chemistry

Alkanes of Pharmaceutical Importance – PST05106 Pharmaceutical Organic Chemistry

NTA Level 5 • Semester 1 • PST05106 Alkanes of Pharmaceutical Importance Pharmaceutical Organic Chemistry • Source Session/Topic 8 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 8: Alkanes 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 alkanes • List alkanes and their isomers • Explain nomenclature of alkanes • Draw chemical structure of alkanes • List chemical properties of alkanes • Explain chemical reactions of alkanes 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 Alkanes | | | |Presentation | | |3 |15 minutes |Buzzing |Alkanes and their Isomers | | | |Presentation | | |4 |15 minutes |Presentation |Nomenclature of Alkanes | |5 |15 minutes |Presentation |Chemical Structure of Alkanes | |6 |10 minutes |Brainstorming |Chemical Properties of Alkanes | | | |Presentation | | |7 |30 minutes |Group |Chemical Reactions and Uses of | | | |discussion |Alkanes | | | |Presentation | | |8 |10 minutes |Presentation |Key Points | |9 |10 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 Alkanes (10 minutes). |Activity: Brainstorming (5 minutes) | | | |Ask students to brainstorm on the following question: | | | |What is Alkane? | | | |ALLOW few students to respond. | | | |WRITE their responses on the flip chart/ board. | | | |CLARIFY and SUMMARISE by using the content below; | • Alkane or Paraffin is an acyclic saturated hydrocarbon composed of only carbons and hydrogen atoms and contain carbon-carbon single bonds. • Compounds that contain only carbon and hydrogen are called hydrocarbons. Homologous series (homo is Greek for “the same as”) is a family of compounds in which each member differs from the next by one methylene group (CH2). • The general molecular formula for an alkane is CnH2n+2 where n is an integer. • Members (CnH2n+2) o Methane CH4 o Ethane C2H6 o Propane C3H8 o Butane C4H10 o Pentane C5H12 o Hexane C6H14 o Heptane C7H16 o Octane C8H18 o Nonane C9H20 o Decane C10H22 o Undecane C11H24 etc • So, if an alkane has one carbon atom, it must have four hydrogen atoms; if it has two carbon atoms, it must have six hydrogen. NOTE; Only one possible structure for an alkane with molecular formula CH4 (methane) and molecular formula C2H6 (ethane) • There are two possible structures for an alkane straight-chain and a branched structure. • Both of these structures fulfill the requirement that each carbon forms four bonds and each hydrogen forms only one bond. STEP 3: Alkanes and their Isomers (15 minutes). |Activity: Buzzing (5minutes) | | | |ASK students to pair up and buzz on the following question for 5 | |minutes. | | | |What is an isomer? | |What is isomerism? | |ALLOW pairs to respond on the question. | | | |WRITE their response on the flip chart/board. | | | |CLARIFY and SUMMARIZE by using the content below | • Isomers Refers to different compounds having the same molecular formula but different structural formula (have different arrangements of atoms in space). • In n-alkanes, no carbon is bonded to more than two other carbons, give rise to a linear chain. • When carbon is bonded to more than two other carbons, a branched is formed. Example.1; C6H14 has 5 isomers as follows: o Hexane o 2-Methylpentane o 3-Methylpentane o 2,2-Dimethylbutane o 2,3-Dimethylbutane Example.2; C7H16 has 9 isomers as follows: o Heptane o 2-Methylhexane o 3-Methylhexane o 2,2-Dimethylpentane o 2,3-Dimethylpentane o 2,4-Dimethylpentane o 3,3-Dimethylpentane o 3-Ethylpentane o 2,2,3-Trimethylbutane Example 3; C5H12 has 3 isomers which are: o Pentane o 2-Methylbutane o 2,2-Dimethylpropane Example 4; C4H10 has 2 isomers which are; o Butane o 2-Methylpropane STEP 4: Nomenclature of Alkanes (15 Minutes). • Rule1. Determine the longest continuous carbon chain. o This chain is called the parent hydrocarbon. • Rule 2. In isomeric compounds (II and III), indicate by a number the Carbon to which the alkyl group is attached. • Rule 3. In numbering the parent chain, start at whichever end resulting in the use of the lowest numbers; thus, II is called 2–‐ methylpentane rather than 4–‐ methylpentane. • Rule 4. If the same alkyl group occurs more than once as a side chain, indicate this by the prefix di-, tri-, tetra- etc., to show how many of these alkyl groups are there and indicate by various numbers the position of each group, as in 2,2,4‐trimethyl-pentane. [pic] • Rule 5 If there are several different alkyl groups attached to the parent chain, name them in alphabetical order, as in 3,3‐diethyl-5- isopropyl-4-methyloctane [pic] STEP 5: Chemical Structure of Alkanes (15 minutes). • All acyclic alkanes (unbranded and branched) have the characteristic molecular formula CnH2n+2, where n is the number of carbon atoms in the chain. • Gives the molecular formulas and Lewis structure for the unbranched and n-alkanes (n stands for normal) [pic] STEP 6: Chemical Properties of Alkanes (10 minutes). |Activity: Brainstorming (5minutes) | | | |ASK students to pair up and brainstorm on the following question for 5 | |minutes. | | | |What are the chemical properties of Alkanes? | | | |ALLOW pairs to respond on the question | | | |WRITE their response on the flip chart/board | | | |CLARIFY and SUMMARIZE by using the content in the table 1 below | • Combustion o Complete combustion (Under sufficient amount of oxygen (Air)) any hydrocarbon produces carbon

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