Organic Chemistry – Some Basic Principles And Techniques MCQs With Answers – Part 6 (Class 11 Chemistry)
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Organic Chemistry – Some Basic Principles and Techniques MCQs with Answers – Part 6 (Class 11 Chemistry)

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511. A student writes the following inference table from qualitative organic analysis.
ObservationStudent inference
P. Prussian blue colour in Lassaigne’s nitrogen testnitrogen present
Q. Violet colour with sodium nitroprussidesulfur present
R. Yellow \( \mathrm{AgI} \) precipitate insoluble in \( \mathrm{NH_4OH} \)iodine present
S. White \( \mathrm{AgCl} \) precipitate soluble in \( \mathrm{NH_4OH} \)bromine present
Which inference is unsuitable?
ⓐ. S
ⓑ. P
ⓒ. Q
ⓓ. R
512. In a Carius estimation, \(0.420\,\text{g}\) of an organic compound containing chlorine gives \(0.765\,\text{g}\) of \( \mathrm{AgCl} \). If another analysis gives \(40.0\%\) carbon and \(5.0\%\) hydrogen, what is the percentage of oxygen assuming only \( \mathrm{C} \), \( \mathrm{H} \), \( \mathrm{O} \), and \( \mathrm{Cl} \) are present? Use \( \mathrm{AgCl}=143.5 \) and \( \mathrm{Cl}=35.5 \).
ⓐ. \(5.0\%\)
ⓑ. \(20.0\%\)
ⓒ. \(10.0\%\)
ⓓ. \(30.0\%\)
513. In a second Carius estimation, \(0.420\,\text{g}\) of compound gives \(0.764\,\text{g}\) of \( \mathrm{AgCl} \). If the same compound contains \(40.0\%\) carbon and \(5.0\%\) hydrogen, what is the oxygen percentage assuming only \( \mathrm{C} \), \( \mathrm{H} \), \( \mathrm{O} \), and \( \mathrm{Cl} \) are present? Use \( \mathrm{AgCl}=143.5 \) and \( \mathrm{Cl}=35.5 \).
ⓐ. \(5.0\%\)
ⓑ. \(10.0\%\)
ⓒ. \(15.0\%\)
ⓓ. \(20.0\%\)
514. A compound containing only \( \mathrm{C} \), \( \mathrm{H} \), \( \mathrm{O} \), and \( \mathrm{Cl} \) has \(36.0\%\) \( \mathrm{C} \), \(5.0\%\) \( \mathrm{H} \), \(16.0\%\) \( \mathrm{O} \), and \(43.0\%\) \( \mathrm{Cl} \). Which empirical formula is obtained? Use \( \mathrm{C}=12 \), \( \mathrm{H}=1 \), \( \mathrm{O}=16 \), and \( \mathrm{Cl}=35.5 \).
ⓐ. \( \mathrm{C_3H_5OCl} \)
ⓑ. \( \mathrm{C_2H_4OCl_2} \)
ⓒ. \( \mathrm{C_4H_6OCl} \)
ⓓ. \( \mathrm{C_3H_6O_2Cl} \)
515. In an elemental-analysis problem, the mole ratio after division by the smallest mole value is \( \mathrm{C:H:Cl}=1.00:1.50:0.50 \). Which empirical formula should be written?
ⓐ. \( \mathrm{CH_{1.5}Cl_{0.5}} \)
ⓑ. \( \mathrm{CH_3Cl} \)
ⓒ. \( \mathrm{C_2H_2Cl} \)
ⓓ. \( \mathrm{C_2H_3Cl} \)
516. A compound has empirical formula \( \mathrm{C_2H_3Cl} \). Its vapour density is \(62.5\). What molecular formula is obtained? Use \( \mathrm{C}=12 \), \( \mathrm{H}=1 \), and \( \mathrm{Cl}=35.5 \).
ⓐ. \( \mathrm{C_4H_6Cl_2} \)
ⓑ. \( \mathrm{C_2H_3Cl} \)
ⓒ. \( \mathrm{C_6H_9Cl_3} \)
ⓓ. \( \mathrm{C_8H_{12}Cl_4} \)
517. An organic compound is analysed as follows: carbon and hydrogen are found by combustion, nitrogen by Dumas method, and chlorine by Carius method. Oxygen is then calculated by difference. Which condition is essential for the oxygen-by-difference step?
ⓐ. the compound must contain no carbon
ⓑ. the compound must give no \( \mathrm{CO_2} \)
ⓒ. the Carius precipitate must be ignored
ⓓ. all other elements must be accounted for
518. A compound contains \( \mathrm{C} \), \( \mathrm{H} \), \( \mathrm{N} \), and \( \mathrm{Cl} \), but no oxygen. A student subtracts only carbon and hydrogen from \(100\%\) and calls the remaining mass oxygen. What is the main error?
ⓐ. oxygen must always be present in organic compounds
ⓑ. carbon cannot be estimated from \( \mathrm{CO_2} \)
ⓒ. chlorine cannot be estimated gravimetrically
ⓓ. nitrogen and chlorine were ignored
519. A compound gives \(0.440\,\text{g}\) \( \mathrm{CO_2} \), \(0.180\,\text{g}\) \( \mathrm{H_2O} \), and \(0.1435\,\text{g}\) \( \mathrm{AgCl} \) from separate suitable samples. Which calculation correctly gives the mass of chlorine from \( \mathrm{AgCl} \)?
ⓐ. \(0.1435\times\frac{108}{143.5}\)
ⓑ. \(0.1435\times\frac{143.5}{35.5}\)
ⓒ. \(0.1435\times\frac{35.5}{143.5}\)
ⓓ. \(0.1435+35.5\)
520. A graph is drawn for an empirical-formula calculation. The horizontal axis shows the calculation stage: mass of element, moles of element, divided ratio, and whole-number ratio. The graph shows a sharp change between mass and moles for chlorine compared with hydrogen. What is the best reason?
ⓐ. chlorine cannot be part of an empirical formula
ⓑ. hydrogen is always absent when chlorine is present
ⓒ. chlorine's larger atomic mass gives fewer moles
ⓓ. mole ratios are obtained by adding atomic masses to percentages
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