The latent heat of fusion of benzene is 30.25 cal/g. 0.0802 g of a substance when dissolved in 13.03 g of benzene lower the freezing point by 0.490°C. If pure benzene freezes at 5.4°C, calculate the - Chemistry (Theory)

प्रश्न

The latent heat of fusion of benzene is 30.25 cal/g. 0.0802 g of a substance when dissolved in 13.03 g of benzene lower the freezing point by 0.490°C. If pure benzene freezes at 5.4°C, calculate the molecular mass of the substance.

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उत्तर

Given: Mass of solute = 0.0802 g

Mass of benzene (solvent) = 13.03 g = 0.01303 kg

Depression in freezing point (ΔT_f) = 0.490°C

Latent heat of fusion of benzene = 30.25 cal/g

Freezing point of pure benzene = 5.4°C

K_f for benzene = 5.12 K kg mol⁻¹ ...(Known value)

`Delta T_f = K_f * w_2/(M * w_1)`

`0.490 = 5.12 xx 0.0802/(M * 0.01303)`

`0.490 = 0.4106/(M * 0.01303)`

`0.01303 xx M = 0.4106/0.490`

0.01303 × M = 0.838

`M = 0.838/0.01303`

M = 64.3 g/mol

∴ The molecular mass of the substance is 64.3 g/mol.

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Q 2.76 Q 2.75 Q 2.77

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The latent heat of fusion of benzene is 30.25 cal/g. 0.0802 g of a substance when dissolved in 13.03 g of benzene lower the freezing point by 0.490°C. If pure benzene freezes at 5.4°C, calculate the - Chemistry (Theory)

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The latent heat of fusion of benzene is 30.25 cal/g. 0.0802 g of a substance when dissolved in 13.03 g of benzene lower the freezing point by 0.490°C. If pure benzene freezes at 5.4°C, calculate the - Chemistry (Theory)

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