Check the box under each compound that exists as a pair of mirror-image twins. If none of them do, check the none of the above box under the table. OH HỌ CHICHCH2OH OH CH₂-CH-CH- -CH₂-CH₂ CH₂ none of the above CH₂ CH₂ C-CH₂- OH OH -CH-CH₂ OH HỌ–CHCH, CH—OH OH
Reactive Intermediates
In chemistry, reactive intermediates are termed as short-lived, highly reactive atoms with high energy. They rapidly transform into stable particles during a chemical reaction. In specific cases, by means of matrix isolation and at low-temperature reactive intermediates can be isolated.
Hydride Shift
A hydride shift is a rearrangement of a hydrogen atom in a carbocation that occurs to make the molecule more stable. In organic chemistry, rearrangement of the carbocation is very easily seen. This rearrangement can be because of the movement of a carbocation to attain stability in the compound. Such structural reorganization movement is called a shift within molecules. After the shifting of carbocation over the different carbon then they form structural isomers of the previous existing molecule.
Vinylic Carbocation
A carbocation where the positive charge is on the alkene carbon is known as the vinyl carbocation or vinyl cation. The empirical formula for vinyl cation is C2H3+. In the vinyl carbocation, the positive charge is on the carbon atom with the double bond therefore it is sp hybridized. It is known to be a part of various reactions, for example, electrophilic addition of alkynes and solvolysis as well. It plays the role of a reactive intermediate in these reactions.
Cycloheptatrienyl Cation
It is an aromatic carbocation having a general formula, [C7 H7]+. It is also known as the aromatic tropylium ion. Its name is derived from the molecule tropine, which is a seven membered carbon atom ring. Cycloheptatriene or tropylidene was first synthesized from tropine.
Stability of Vinyl Carbocation
Carbocations are positively charged carbon atoms. It is also known as a carbonium ion.
![Check the box under each compound that exists as a pair of mirror-image twins. If none of them do, check the none of the above box under the table.
OH
HỌ CHÍ CH-CH₂-OH
CH3
a for
CH₂
OH
OH
CH₂- CHCHCH, CH3 HỌ-CH-
CH3
none of the above
OH
OH
-CH₂-CH-
-CH3
-CH₂-CH-OH
OH](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fe19c233c-24a8-4ffe-8982-bf031fc708cd%2F67617c07-2569-4909-88c6-380c9575ab59%2Fxnni8io_processed.jpeg&w=3840&q=75)
![Replace with a C1 atom all substituents except H on the 6' carbon of this molecule.
• For example, if there's an NH group and two H atom substituents on the 6 carbon, replace the NH₂ group with a C1 atom.
If there is nothing for you to do, for any reason, check the no changes box under the drawing area.
Ono changes
-0-CH₂
T
H
ОН
H
OH
-T
NH₂
'U
X
C
w
@](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fe19c233c-24a8-4ffe-8982-bf031fc708cd%2F67617c07-2569-4909-88c6-380c9575ab59%2Ffa3batl_processed.jpeg&w=3840&q=75)
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