IF the melting point of ice is 273 K and molar enthalpy of usion for ice `= 6.0 kJ mol^(-1)`, the change in entropy for the fusion of 1 mole of ice will be

(i) Calculate the change in entropy for the fusion of 1 mole of ice. The melting point of ice is 273 K and molar enthalpy of fusion for ice = 6.0 kJ/mole. (ii) Calculate the standard of entropy change for the following reaction. {:(,H^(+)(aq), + OH(aq)to, H_(2)O(l)),(S^(@)(298 K)//JK^(-1)mol^(-1),0,-10.7,+70):}

At the melting point of ice, DeltaG = 0 .

The melting point of a solid is 300K and its latent heat of fusion is 600 cal mol^(-1) . The entropy change for the fusion of 1 mole of the solid ( in cal K^(-1)) at the same tempertre would be :

Enthalpy of fusion of water is 6.01 kJ mol^(-1) . The entropy change of 1 mole of ice at its melting point will be:

Latent heat of fusion of ice is 6kJ mol^(-1) . Calculate the entropy change in the fusion of ice.

The molar enthlpy of fusion of water is 6.01KJ mol^(-1) . The entropy change of 1 mol of water at its melting point will be

Latent heat of fusion of ice is 0.333 kJ g^(-1) . The increase in entropy when 1 mole water melts at 0^(@)C will be

Melting point of a solid is x K and its latent heat of fusion is 600 cal mol^(-1) . The entropy change for fusion of 1 mol solid is 2 cal mol^(-1)K^(-1) . The value of x will be:

Melting point of a solid is xK and its latent heat of fusion is 600 cal mol^(-1) . The entropy changes for fusion of 1 mol solid is 2 cal mol^(-1) K^(-1) . The value of x will be

At 0^(@)C,DeltaH_(fus)^(@)=6kJ //mol , change of entropy for freezing of one mole of ice will be :