Question

2.2 g of an alcohol (A), when treated with CH3-MgI, liberates 560 mL of CH4 at STP. Alcohol (A) on dehydration followed by ozonolysis gives ketone (B) along with (C). Oxime of ketone (B) contains 19.17% N. (A) on oxidation gives ketone (D) having the same number of carbon atoms.
Structure of (B) is?

• A. $C{H}_3-C{H}_2-\stackrel{O}{\stackrel{||}{C}}-C{H}_3$
• B. $C{H}_3-\stackrel{C{H}_3}{\stackrel{|}{C}}=O$
• C. $C{H}_3-\underset{C{H}_3}{\underset{|}{C}}H-\stackrel{O}{\stackrel{||}{C}}-C{H}_3$
• D. none of these

Answer 1

Answer: (B)

$C{H}_3-\stackrel{C{H}_3}{\stackrel{|}{C}}=O$

Given that:

$\underset{2.2g}{A\left(ROH\right)}+C{H}_{3}MgI\to \underset{560mLatSTP}{C{H}_4}$

$A\left(ROH\right)\stackrel{\left(i\right)H^{+}\left(ii\right)Ozonolysis}{\to }B\left(ketone\right)+C$

$B+N{H}_{2}OH\to \underset{19.17N}{O\left(oxime\right)}$

$A\left(ROH\right)\stackrel{\left[O\right]}{\to }D(ketone$

560 mL of $C{H}_4$ at STP:

number of moles of $C{H}_4$, n=560/22400=0.025 mol

1 mol of $C{H}_4$ will be obtained by reaction of 1 mol of $C{H}_{3}MgI$ with 1 mol of A

thus 0.025 mol of $C{H}_4$ is obtained from 0.025 mol of A

if 0.025 mol of A=2.2g

mass of 1 mol of A=2.2/0.025=88g/mol

Molecular formula of an alcohol=$C_n{H}_{2n+1}OH$

molar mass of alcohol=12n+2n+1+16+1

For A, molar mass=88,

thus, 12n+2n+1+16+1=88

and n=5

Thus A=$C_5{H}_{11}OH$

Since A on dehydration will form an alkene which on ozonolysis gives a ketone.

Therefore the alkene formed should have two alkyl groups attached on one of the doubly bonded carbon so as to get a ketone. Thus possible structure of alkenes are:

$C{H}_2=\underset{\underset{C{H}_3}{|}}{C}-C{H}_2-C{H}_3$

$C{H}_3-\underset{\underset{C{H}_3}{|}}{C}=CH-C{H}_3$

Thus, possible structure of A are:

$\stackrel{\stackrel{OH}{|}}{C}{H}_2-\underset{\underset{C{H}_3}{|}}{C}-C{H}_2-C{H}_3$ OR $C{H}_3-\stackrel{\stackrel{OH}{|}}{\underset{\underset{C{H}_3}{|}}{C}}-C{H}_2-C{H}_3$

$C{H}_3-\underset{\underset{C{H}_3}{|}}{C}H-\stackrel{\stackrel{OH}{|}}{C}H-C{H}_3$

Thus possible B are:

$O=\underset{\underset{C{H}_3}{|}}{C}-C{H}_2-C{H}_3$

$C{H}_3-\underset{\underset{C{H}_3}{|}}{C}=O$

and corresponding oxime are:

$HON=\underset{\underset{C{H}_3}{|}}{C}-C{H}_2-C{H}_3$=X

$C{H}_3-\underset{\underset{C{H}_3}{|}}{C}=NOH$=Y

percent N in X is:(mass of N/molar mass of X)$\times 100=\frac{14}{(12\times 4+9+16+14)}\times 100=16.1$%

percent N in Y is(:mass of N/molar mass of Y)$\times 100=\frac{14}{(12\times 3+7+16+14)}\times 100=19.18$%

Therefore according to given data oxime obtained is $C{H}_3-\underset{\underset{C{H}_3}{|}}{C}=NOH$

from ketone =B= $C{H}_3-\underset{\underset{C{H}_3}{|}}{C}=O$