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The graph below shows the HPLC calibration curve for folic acid - VCE - SSCE Chemistry - Question 18 - 2023 - Paper 1

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The graph below shows the HPLC calibration curve for folic acid. A 1.00 mL sample containing an unknown concentration of folic acid is diluted to 100 L. The diluted... show full transcript

Worked Solution & Example Answer:The graph below shows the HPLC calibration curve for folic acid - VCE - SSCE Chemistry - Question 18 - 2023 - Paper 1

Step 1

Determine the Concentration from the Calibration Curve

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Answer

From the calibration curve, we can estimate that a peak area of 0.35 corresponds to a folic acid concentration of approximately 18 ng mL⁻¹.

Step 2

Convert to Original Sample Concentration

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Answer

Since the original sample was diluted from 1.00 mL to 100 L, we need to calculate the concentration in the original sample:

Using the dilution formula: C1V1=C2V2C_1 V_1 = C_2 V_2, where:

  • C1C_1 = original concentration (unknown)
  • V1V_1 = original volume (1.00 mL)
  • C2C_2 = concentrated (diluted) concentration (18 ng mL⁻¹)
  • V2V_2 = diluted volume (100 L = 100,000 mL)

Rearranging gives: C1=C2V2V1C_1 = \frac{C_2 V_2}{V_1}. Substituting values: C1=(18 ng mL1)(100,000 mL)1 mL=1,800,000 ng mL1=1,800 µg mL1C_1 = \frac{(18 \text{ ng mL}^{-1})(100,000 \text{ mL})}{1 \text{ mL}} = 1,800,000 \text{ ng mL}^{-1} = 1,800 \text{ µg mL}^{-1}.

Step 3

Final Concentration

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Answer

Thus, the approximate concentration of folic acid in the 1 mL sample is found to be 18 µg mL⁻¹.

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