MCQEasyJEE 2023Chromatography

JEE Chemistry 2023 Question with Solution

Three organic compounds A, B, and C were allowed to run in thin layer chromatography using hexane and gave the following result. The RfR_f value of the most polar compound is _____ ×102\times 10^{-2}

  • A

    2525

  • B

    0.250.25

  • C

    0.750.75

  • D

    11

Answer

Correct answer:A

Step-by-step solution

Standard Method

Given: Three organic compounds were separated by thin layer chromatography using hexane. The solution indicates that the most polar compound has the smallest RfR_f value.

Find: The RfR_f value of the most polar compound in the form _____ ×102\times 10^{-2}.

Thin layer chromatography result showing solvent front distance as 8 units and the most polar compound spot travelled 2 units from the baseline.

From the extracted solution:

More RfR_f less its polarity

Rf=Distance travelled by compound XDistance travelled by solvent YR_f = \frac{\text{Distance travelled by compound } X}{\text{Distance travelled by solvent } Y}

For the most polar compound, the travelled distance is 22 and the solvent travelled distance is 88.

Rf=28=0.25=25×102R_f = \frac{2}{8} = 0.25 = 25 \times 10^{-2}

Therefore, the required value is 2525, so the correct option is A.

Common mistakes

  • Choosing the compound with the largest RfR_f as the most polar is incorrect here. In TLC with hexane as the mobile phase, the more polar compound moves less on the plate. Use the smallest travel distance for the most polar compound.

  • Using the spot distance directly as RfR_f is wrong because RfR_f is a ratio. Always divide the distance travelled by the compound by the distance travelled by the solvent front.

  • Selecting 0.250.25 instead of 2525 ignores the form asked in the question. Since the blank is followed by ×102\times 10^{-2}, convert 0.250.25 into 25×10225 \times 10^{-2} before marking the answer.

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