The variation of molar conductivity with the concentration of an electrolyte (X) in an aqueous solution is shown in the given figure.

The electrolyte X is:

1. CH3COOH 2. KNO3
3. HCl 4. NaCl
Subtopic:   Kohlrausch Law & Cell Constant |
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The value of eq for NH4Cl, NaOH and NaCl are respectively 149.74, 248.1 and 126.4 ohm-1cm2equiv-1. The value of eq of NH4OH is -

1. 317.44

2. 271.44

3. 71.44

4. It cannot be calculated from the data given 

Subtopic:   Kohlrausch Law & Cell Constant |
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The limiting molar conductivities of Nal, NaNO3, and AgNO3 are \(\text { 12. } 7 \mathrm{~Sm}^2 \mathrm{~mole}^{-2}, 12 \mathrm{~Sm}^2 \mathrm{~mole}^{-2}\) and \(\text { 13.3 } \mathrm{Sm}^2 \mathrm{~mole}^{-2}\) respectively (all at 25°C). The limiting molar conductivity of Agl at this temperature is:

1.  \(14~S~m^2mole^{-2}\)
2.  \(16~S~m^2mole^{-2}\)
3.  \(48~S~m^2mole^{-2}\)
4. \(12.6~S~m^2mole^{-2}\)
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Which of the following expressions gives the limiting molar conductivity \(\lambda_m^0\)​ of MgCl₂ in terms of the given values:

[Given: \(\small{\lambda_m^o(CaCl_2)=x~S~\text{cm}^2\text{mol}^{-1}},\) \(\small{\lambda^o(MgSO_4)=y~S~\text{cm}^2\text{mol}^{-1}}\) and \(\small{\lambda^o(CaSO_4)=z~S~\text{cm}^2\text{mol}^{-1}}.\)]

1. \(2x+y-z\)
2. \(x-\frac{y}{2}-\frac z2\)
3. \(x+y-z\)
4. \(x-\frac y2-z\)
Subtopic:   Kohlrausch Law & Cell Constant |
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If molar conductivity of Ca2+ and Cl- ions are 119 and 71 Scm2mol-1 respectively, then the molar conductivity of CaCl2 at infinite dilution is:
1. 215 \(Scm^2mol^{-1}\) 2. 340 \(Scm^2mol^{-1}\)
3. 126 \(Scm^2mol^{-1}\) 4. 261 \(Scm^2mol^{-1}\)
Subtopic:   Kohlrausch Law & Cell Constant |
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The limiting molar conductivities of KCl, KNO3, and AgNO3 are 149.9, 145.0, and 133.4 S cm2 mol−1, respectively, at 25°C. The limiting molar conductivity of AgCl at the same temperature in S cm2 mol−1 will be:
1. 128.5 2. 138.3
3. 161.5 4. 283.3
Subtopic:   Kohlrausch Law & Cell Constant |
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Electrolyte

KCl

KNO3

HCl

NaOAc

NaCl

Λ(Scm2mol-1)

149.9

145.0

426.2

91.0

126.5

Calculate ΛHOAc using appropriate molar conductances of the electrolytes listed
above at infinite dilution in H2O at 25°C

1. 517.2

2. 552.7

3. 390.7 

4. 217.5

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The term infinite dilution refers to :
1. α 1, for weak electrolytes
2. An electrolyte is 100% dissociated
3. All interionic effects disappear
4. All of the above
Subtopic:  Conductance & Conductivity |  Kohlrausch Law & Cell Constant |
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What is the cell constant of a conductance cell in which the distance between the electrodes is 1.5 cm and the area of cross-section of each electrode is 0.75 cm²?

1. 1.0125 cm

2. 0.5 cm

3. 2.0 cm-1

4. 0.2cm-1

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At 25ºC, molar conductance of 0.1 molar aqueous solution of ammonium hydroxide is \(\mathrm{9.54 ~ohm^{–1}cm^2 mol^{–1}}\) and at infinite dilution, its molar conductance is \(\mathrm{238 ~ohm^{–1} cm^2~ mol^{–1}.}\) The degree of ionization of ammonium hydroxide at the same concentration and temperature is:
1. 20.800%
2. 4.008%
3. 40.800%
4. 2.080%
Subtopic:   Kohlrausch Law & Cell Constant |
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AIPMT - 2013
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