All of HYDROCARBONS Explained in 8 Minutes
Hydrocarbons are compounds made up of
only carbon and hydrogen. For example,
butane is a hydrocarbon, but a similar
compound called butinol is not because
it also contains an oxygen atom.
Hydrocarbons can be classified into two
main categories, alifhatic and aromatic.
For now, let's focus on alifhatic
hydrocarbons and we'll cover aromatic
hydrocarbons later. Aliphatic
hydrocarbons are further divided into
three types alkanes, alkenes, and
alkyes. The simplest group of
hydrocarbons is called alkanes and the
smallest one is methane which has one
carbon atom connected to four hydrogen
atoms because carbon always forms four
bonds. Next is ethane and propane. If
you look at these compounds, you will
notice they increase by one carbon and
two hydrogens each time, but they are
otherwise quite similar. We call groups
of compounds like this a homologous
series, which means they have similar
properties and react in similar ways.
For alkanes, the general formula is CNH
2 N +2. This might look tricky, but it
just means that if a compound has n
carbon atoms, it will have 2 * N + 2
hydrogen atoms. For example, if we have
propane, which has three carbon atoms,
we can calculate its hydrogen count as 2
* 3 + 2, giving it 8 hydrogens. This
formula helps us to figure out the
molecular formula of larger alkanes too.
Take octane for instance, which has
eight carbon atoms. Using the formula we
calculate it will have 18 hydrogens. One
important thing to note is that alkanes
are saturated compounds meaning every
carbon atom forms four single bonds.
There are no double bonds. If we change
one of the single bonds in propane to a
double bond the carbons involved would
lose a hydrogen and the compound would
no longer be an alkan and will be
changed to alken. So I think it's a good
time to explain alkenes. Now alkenes are
another important group of hydrocarbons
but they differ from alkanes in a
significant way. They contain at least
one carbon-to-arbon double bond. The
presence of double bond is responsible
for making them unsaturated
hydrocarbons. The simplest alken is
ethine which has two carbon atoms
connected by a double bond and each
carbon is also bonded to two hydrogen
atoms. Moving up the series, we have
propene. It consists of three carbon
atoms but only two of them are connected
by a double bond while the third carbon
forms single bonds. If you look at the
number of hydrogens's in each molecule,
you will notice that alkenes have fewer
hydrogens than alkanes with the same
number of carbons. This is because the
double bond replaces two single bonds.
Like alkanes, alkenes also form a
homologous series, meaning they share
similar chemical properties and can be
described by a general formula. For
alkenes, the formula is
CNH2N. This is simpler than the formula
for alkanes because the presence of the
double bond reduces the hydrogen count.
Let's use propene as an example. with
three carbon atoms. The formula tells us
it should have 2 * 3 hydrogens, giving
us six hydrogens. This pattern holds
true as you go up the series. It's also
crucial to note that because of the
double bond, alkenes are much more
reactive than alkanes. This reactivity
allows them to undergo a wide range of
chemical reactions that are not possible
for alkanes, such as addition reactions,
where atoms or groups of atoms can add
across the double bond. This property of
alkenes plays a major role in industrial
processes such as the production of
plastics like polyethylene. Now we can
go to alkynes portion. Alkyes are
another key class of hydrocarbons but
they are even more reactive than
alkenes. The main feature that
distinguishes alkyes is the presence of
a carbontocarbon triple bond which makes
them unsaturated hydrocarbons like
alkenes but with an even higher level of
unsaturation. The simplest alkine is
ethine commonly known as acetylene with
the molecular formula C2H2. In ethine,
two carbon atoms are joined by a triple
bond and each carbon is connected to a
single hydrogen atom. As we move to the
next alkine, we get propine C3H4 which
has three carbon atoms. Similar to
alkenes, alkyes also form a homologous
series and their chemical behavior can
be predicted using a general formula.
For alkynes, the formula is CNH 2 N
minus2. This means that alkyes have even
fewer hydrogen atoms compared to alkanes
and alkenes due to the presence of the
triple bond. For instance, with propine,
if we apply the formula, we can
calculate that it should have 2 * 3
minus 2 hydrogens, giving us four
hydrogens, C3H4. The next member of the
alkine series, butine, follows the same
rule, resulting in C4H6. The triple bond
in alkynes is the key reason for their
high reactivity. It makes them much more
chemically versatile compared to alkanes
and alkenes. Alkyes can participate in a
variety of reactions including addition
reactions much like alkenes. But because
of the triple bond, these reactions
often occur in two steps. First breaking
the triple bond down to a double bond
and then further to a single bond. One
of the most important alkyes, ethan is
widely used in industrial applications
particularly in welding. Now let's move
towards aromatic hydrocarbons. They are
quite different from aliphatic
hydrocarbons. Actually those cyclic
compounds that contain at least one
benzene ring in their structure are
called aromatic hydrocarbons. Benzene is
a compound made up of six carbon and
hydrogen having cyclic hexagonal
structure with three alternate single
and double bonds. There are two main
types of aromatic hydrocarbons.
Monocyclic and polyyclic aromatic
hydrocarbons. Monocyclic aromatic
hydrocarbons are those aromatic
compounds that contain only one benzene
ring in their structure. The most common
example is benzene, a sixcarbon ring
with alternating single and double
bonds. In monocyclic compounds like
benzene, the ring structure is highly
stable due to the resonance where
electrons are deoized across the ring.
Their unique electron arrangement gives
them chemical stability and specific
reactivity patterns. These compounds
tend to undergo substitution reactions
where an atom or group is replaced but
the aromatic ring remains intact. Some
other examples are phenol, tluene and
analene. But polycyclic aromatic
hydrocarbons are those compounds
consisting of two or more interconnected
aromatic rings. For example, napylene
and anthraine. In this case, the rings
share carbon atoms and the resonance
extends over multiple rings making these
compounds even more stable. Polycyclic
aromatics hydrocarbons are more complex
and have multiple rings fused together.
They are commonly found in substances
like colar and are byproducts of
incomplete combustion due to their
larger structure. They have more varied
chemical behavior and are used in
industries for producing dyes, plastics
and other materials. The reactivity of
hydrocarbons depends on the type of
bonds between the carbon atoms. It means
that alkanes, alkenes and alkynes each
type shows different reactivity due to
the nature of their bonds. Alkanes
mostly undergo combustion reactions
which means burning an oxygen to produce
carbon dioxide and water and also
substitution reactions where one
hydrogen atom is replaced by another
atom like in halogenation where a
halogen like chlorine or bromine takes
the place of a hydrogen atom. However,
alkanes don't easily participate in
other reactions because their single
bonds are not very reactive. In some
cases, we also say that the sigma bond
in alkanes is inert which means it is
non-reactive. Alkenes on the other hand
contain at least one double bond and the
main reactions that alkenes undergo are
addition reactions where the double bond
is broken and atoms like hydrogen,
halogens or other groups are added to
the carbon atoms. For example, in
hydrogenation, hydrogen atoms are added
turning the alken into an alkan. Alkenes
can also react with halogens in
halogenation reactions and with water in
hydration reactions to form alcohols.
Alkyes are even more reactive than
alkenes. The triple bond in alkynes is
very reactive because it can be broken
in reactions that are similar to those
seen in alkenes. Alkyes also undergo
addition reactions where the triple bond
is broken and atoms are added to the
carbons. Since alkynes have more bonds
that can be broken, they can react in
two steps. First breaking one bond to
form a double bond and then breaking the
second bond to form a single bond. This
makes alkyes even more reactive than
alkenes. To sum up, the reactivity of
hydrocarbons alkanes are the least
reactive, showing mainly substitution
and combustion reactions. Alkenes are
more reactive, showing addition
reactions due to their double bonds.
Alkyes are the most reactive with their
triple bonds, making them capable of
multiple addition reactions. The overall
order of reactivity is alkyes greater
than alkenes greater than alkanes.
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