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At infinite dilution, when the dissociat...

At infinite dilution, when the dissociation of electrolyte is complete, each ion makes a definite contribution towards the molar conductance of electrolyte, irrespective of the nature of the other ion with which it is associated.
the molar conductance of an electrolyte at infinite dilution can be expressed as the sum of the contributions from its individual ions.
`A_(x)B_(y) rarr xA^(y+)+yB^(x-)`
`Lambda_(m)^(@)(A_(x)B_(y))=xlambda_(A^(y+))^(@)+ylambda_(B^(x-))^(@)`
where, x and y are the number of cations and anions respectively.
The degree of ionisation `'alpha'` of weak electrolyte can be calculated as :
`alpha=Lambda_(m)/Lambda_(m)^(@)`
The molar conductance of 0.001 M acetic acid is `50 ohm^(-2) cm^(2) mol^(-1)`. The maximum value of molar conductance of acetic acid is `250 ohm^(-1) cm^(2) mol^(-1)`. What is the degree of dissociation `(alpha)` of acetic acid ?

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At infinite dilution, when the dissociation of electrolyte is complete, each ion makes a definite contribution towards the molar conductance of electrolyte, irrespective of the nature of the other ion with which it is associated. the molar conductance of an electrolyte at infinite dilution can be expressed as the sum of the contributions from its individual ions. A_(x)B_(y) rarr xA^(y+)+yB^(x-) Lambda_(m)^(@)(A_(x)B_(y))=xlambda_(A^(y+))^(@)+ylambda_(B^(x-))^(@) where, x and y are the number of cations and anions respectively. The degree of ionisation 'alpha' of weak electrolyte can be calculated as : alpha=Lambda_(m)/Lambda_(m)^(@) The unit of molar conductance of an electrolyte solution will be :

At infinite dilution, when the dissociation of electrolyte is complete, each ion makes a definite contribution towards the molar conductance of electrolyte, irrespective of the nature of the other ion with which it is associated. the molar conductance of an electrolyte at infinite dilution can be expressed as the sum of the contributions from its individual ions. A_(x)B_(y) rarr xA^(y+)+yB^(x-) Lambda_(m)^(@)(A_(x)B_(y))=xlambda_(A^(y+))^(@)+ylambda_(B^(x-))^(@) where, x and y are the number of cations and anions respectively. The degree of ionisation 'alpha' of weak electrolyte can be calculated as : alpha=Lambda_(m)/Lambda_(m)^(@) Which of the following solution will have highest value of the molar conductance of CH_(3)COOH ?

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Molar conductance for weak electrolyte on dilution_______.

Molar conductance for weak electrolyte on dilution_______.