The electrical resistance of a column of 0.05 M NaOH solution of diameter 1 cm and length 50 cm is 5.55×103 ohm. Calculate its resistivity, conductivity, and molar conductivity.
A
87.135×10−2ohmm,1.148Sm−1,229.6×10−4Sm2mol−1
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B
67.135×10−2ohmm,1.489Sm−1,229.6×10−4Sm2mol−1
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C
87.135×10−2ohmm,1.296Sm−1,229.6×10−4Sm2mol−1
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D
77.135×10−2ohmm,1.148Sm−1,229.6×10−4Sm2mol−1
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Solution
The correct option is A87.135×10−2ohmm,1.148Sm−1,229.6×10−4Sm2mol−1 For resistivity,
We have to find the area. Area(a)=πr2=3.14×(1cm2)2=0.785cm2=0.785×10−14m2I=50cm=0.5mNow,R=ρlaorρ=Ral=5.55×103ohm×0.758cm250cm=87.135ohmcmConductivity(k)=1ρ=(187.135)Scm−1 =0.01148Scm−1Molarconductivity∧m=k×1000Mcm3L−1=0.01148Scm−1×1000cm3L−10.05molL−1=229.6Scm2mol−1
Alternatively
The values of different quantities in SI units (i.e., in terms of “m” instead of “cm”) ρ=Ra1=5.55×103ohm×0.785×10−4m20.5m=87.135×10−2ohmmk=1ρ=10087.135=1.148Sm−1and∧m=kc=1.148Sm−150molm−3=229.6×10−4Sm2mol−1