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ORGANIC CHEMISTRY Explained in 8 Minutes

8:32EnglishTranscribed Jul 23, 2026
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organic chemistry is the branch of

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chemistry that deals with compound

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containing carbon atoms but at first it

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was thought that organic compounds are

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those which are obtained from living

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things vitalism or commonly know as

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vital force Theory says that those

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compounds which are obtained from living

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organism are organic and those obtained

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from non-living are inorganic but later

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on this theory was rejected mainly by

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Friedrich voer when he prepared Ura

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which is an organic compound from

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ammonium cyanate inorganic in nature

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after rejection of vitalism the modern

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definition of organic chemistry was put

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forward and now we say those compounds

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that contain carbon are organic in

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nature organic compounds are mostly

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complex and have large molecular

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structures this is due to the fact that

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carbon has a unique ability to form

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longchain compounds and this is known as

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catenation actually catenation is the

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ability of a carbon to form longchain

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compounds which is unique and none other

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than carbon atom can form such longchain

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compounds classification of organic

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compounds organic compounds are

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classified into two categories which are

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open chain or a cyclic compounds and

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closed chain or cyclic compounds open

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chain organic compounds are a type of

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organic molecule in which the carbon

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atoms are arranged in a linear or

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branched chain rather than forming a

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ring structure these compounds are also

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known as a cyclic compounds key features

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of open chain organic compounds include

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linear or Branch structure the carbon

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atoms are connected in a straight line

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or in a branched manner they can be

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further classified based on the type

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type of bonding between carbon atoms

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such as alkanes have single bond between

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carbon atoms alkenes have at least one

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double bond between carbon atoms and

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alkin have at least one triple bond

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closed chain compounds also known as

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cyclic compounds are organic molecules

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in which the carbon atoms are connected

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in a loop or ring structure unlike open

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chain compounds these have no terminal

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ends because the chain of carbon atoms

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forms a closed loop key features of

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closed chain organic compounds ring

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structure the carbon atoms are arranged

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in a ring or cyclic pattern the Rings

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can be simple like in Benzene or fused

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like in nathene closed chain compounds

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are further classified into two

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categories alicyclic compounds and

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aromatic compounds those cyclic

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compounds that resemble aliphatic

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compounds in their properties are called

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alicyclic examples include cyclohexane

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and cyclopropane but aromatic compounds

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are those that contain at least one

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Benzene ring in their structure and most

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common examples include Benzene and

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naphthylene to understand organic

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chemistry it's very important to have

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knowledge of functional groups actually

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functional group can be defined as the

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atom or group of atoms or double bond or

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triple bond whose presence gives

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specific properties to organic compounds

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now let's explain it a bit more when all

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the carbon atoms contain only single

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Bond we call them alkanes and those

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which contain at least one double bond

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are known as alkenes so actually it's

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single and double bond which is creating

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difference between alkanes and alkenes

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and that's called the functional group

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The there are many other functional

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groups such as alcohol formal group

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ketones and carboxilic acids functional

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groups play a crucial role in

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determining the properties and

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reactivity of organic compounds for

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example alcohols can undergo oxidation

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to form alahh or carboxilic acids while

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alkenes can participate in addition

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reactions isomerism refers to the

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phenomenon where two or more compounds

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share the same molecular formula but

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differ in their structures or spatial

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Arrangements these different forms are

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called isomers is ism is significant in

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organic chemistry because the structure

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of a molecule largely determines its

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chemical properties and reactivity there

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are several types of isomerism the most

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important of which include structural

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isomers and stereoisomers structural

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isomers have the same molecular formula

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but different connectivity of atoms this

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means the atoms are bonded together in

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different ways leading to different

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structures it is further classified to

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chain isomers differ in the arrangement

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of the carbon chain for example straight

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chain and branched chain compounds

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position isomers differ in the position

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of a functional group on the carbon

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chain and functional group isomers

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differ in the type of functional group

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present geometric isomers are a type of

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stereoisomerism where the isomers have

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the same connectivity of atoms but

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differ in the spatial Arrangement around

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a double bond or a ring structure it is

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also called cyrans isomerism and this

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occurs when two substituents are on the

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same side known as CIS isomer and on

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opposite sides called trans in two

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buttin the CIS isomer has both methyl

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groups on the same side of the double

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bond while the trans isomer has them on

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opposite sides stereoisomers have the

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same molecular formula and connectivity

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of atoms but differ in the

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three-dimensional orientation of their

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atoms in space hybridization is a

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concept in chemistry that explains the

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mixing of atomic orbitals to form new

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hybrid orbitals these hybrid orbitals

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are crucial for understanding the

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bonding and geometry of molecules the

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type of hybridization influences the

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molecular geometry Bond angles and

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overall shape of the molecule some

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common types of hybridization are SP SP2

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and sp3 in Sp hybridization One S

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orbital mixes with one p orbital from

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the same atom to form two equivalent SP

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hybrid orbitals the remaining two P

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orbitals Remain unhybridized the two SP

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hybrid orbitals arrange themselves

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linearly to minimize electron pair

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repulsion leading to a bond angle of

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180° in acetylene each carbon atom is sp

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hybridized forming a linear structure

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with a triple bond between the carbons

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and a single bond between carbon and

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hydrogen in SP2 hybridization One S

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orbital mixes with two P orbitals to

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form three equivalent SP2 hybrid

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orbitals the third p orbital remains

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unhybridized and is often involved in pi

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bonding the three SP2 hybrid orbitals

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arrange themselves in a trigonal planer

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geometry with Bond angles of 120° in

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Ethan each carbon atom is 2 hybridized

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leading to a planer structure with a

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double bond between the carbons and

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single bonds with hydrogen atoms in sp3

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hybridization One S orbital mixes with

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three p orbitals to form four equivalent

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sp3 hybrid orbitals the four sp3 hybrid

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orbitals arrange themselves in a

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tetrahedral geometry with Bond angles of

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109.5° in methane the carbon atom is sp3

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hybridized resulting in a tetrahedral

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shape where each sp3 or orbital forms a

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sigma bond with a hydrogen atom

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structure and bonding the molecular

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formula represents the actual number of

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atoms of each element in a molecule it

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does not provide any information about

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the arrangement of these atoms for

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ethanol the molecular formula is

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c2h6o the structural formula provides

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more detail by showing how the atoms are

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connected or bonded to each other it

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represents the molecular structure using

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symbols for atoms and lines for bonds

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for example structural formula of ethyl

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alcohol can be written as organic

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reactions typically fall into several

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main categories such as addition

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substitution elimination and

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rearrangement each type of reaction

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involves different processes and has

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distinct outcomes addition reactions

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occur when two or more molecules combine

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to form a single product this type of

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reaction is common in unsaturated

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compounds such as alkenes and alkin

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where a p bond is broken and new s bonds

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are formed for example the addition of

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hydrogen to Ethan in the presence of of

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a catalyst forms ethane this is known as

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hydrogenation in substitution reactions

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one atom or group of atoms in a molecule

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is replaced by another atom or group of

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atoms these reactions are common in

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saturated compounds like alkanes and

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aromatic compounds for example

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nucleophilic substitution reactions in

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which a nucleophile replaces a leaving

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group in a molecule but in electrophilic

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substitution reactions an electrophile

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replaces a hydrogen atom in an aromatic

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ring the reaction of chloromethane with

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hydroxide ion to produce methanol is an

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example of nucleophilic substitution

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elimination reactions involve the

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removal of a small molecule from a

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larger one typically resulting in the

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formation of a double or triple bond

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these reactions are the reverse of

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addition reactions and often occur in

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saturated compounds for example

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unimolecular elimination the reaction

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proceeds via a carbocation intermediate

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and B molecular elimination in which the

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reaction occurs in a single step

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