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.
Question 40
![**Exercise Prompt for Educational Website:**
**Title: Reaction Analysis and Product Prediction**
**Instruction:**
"Draw the major product of this reaction. Ignore inorganic byproducts."
**Chemical Reaction Details:**
- **Reactant:** The reactant is a benzyl ketone, specifically phenyl acetone, illustrated by a structure showing a benzene ring connected to a carbonyl group (C=O) with an additional ethyl group attached to the carbonyl carbon.
- **Reaction Conditions:** The reaction involves hydrogen gas (\( \text{H}_2 \)) and a palladium catalyst \( \text{(Pd)} \).
- **Diagram Explanation:** The top structure is a skeletal formula showing the chemical reactant before the reaction. Below the structure, an arrow points downward indicating the direction towards the product, highlighting the use of hydrogen and palladium.
**Instructions for Students:**
Using the given chemical structure and conditions, predict the major organic product formed in this reaction. Consider the possible hydrogenation of the carbonyl group under the given conditions. Draw the structure of the major product.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fc42a53c5-a661-4e08-8bd7-4bdfe484c1d7%2F7762e484-630b-41c6-8cf7-555fc4a95e9e%2F09doqvh_processed.png&w=3840&q=75)
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