Ethyl chloride C2H5Cl- is prepared by reaction of ethylene with hydrogen chloride -C2H4g - HClg - C2H5Clg - H - -72-3kJ- What is the value of - E in KJ- if 70g of ethylene and 73g of HCl are allowed to react at 300K-

No. of moles C_2H_4 = 70/28 = 2.5, No. of moles of HCl (limiting Reagent) = 73/36.5 = 2 Δ H =Δ E + Δ n_gRT; 72.3= Δ E + ( 1 × 8.314 × 300)/1000 Δ E = 69. ...

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Standard XI

Chemistry

Hess' Law

Ethyl chlorid...

Question

Ethyl chloride $(C_{2} H_{5} C l)$ , is prepared by reaction of ethylene with hydrogen chloride :

$C_{2} H_{4} (g) + H C l (g) \to C_{2} H_{5} C l (g) Δ H = - 72.3 k J$ . What is the value of $Δ E$ (in KJ), if 70g of ethylene and 73g of $H C l$ are allowed to react at 300K?

−69.8

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−180.75

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−174.5

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−139.6

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Solution

The correct option is D
−139.6

No. of moles $C_{2} H_{4} = \frac{70}{28} = 2.5$ , No. of moles of $H C l$ (limiting Reagent) = $\frac{73}{36.5} = 2$

$Δ H = Δ E + Δ n_{g} R T;$

$- 72.3 = Δ E + \frac{(- 1 \times 8.314 \times 300)}{1000}$

$Δ E = - 69.80;$ for two moles $Δ E = - 69.80 \times 2$

$\Rightarrow - 139.6 k J$

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Ethyl chloride $(C_{2} H_{5} C l)$ , is prepared by reaction of ethylene with hydrogen chloride :

$C_{2} H_{4} (g) + H C l (g) \to C_{2} H_{5} C l (g) Δ H = - 72.3 k J$ . What is the value of $Δ E$ (in KJ), if 70g of ethylene and 73g of $H C l$ are allowed to react at 300K?