Some Basic Concepts Of Chemistry MCQs With Answers – Part 5 (Class 11 Chemistry)
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Some Basic Concepts of Chemistry MCQs with Answers – Part 5 (Class 11 Chemistry)

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401. A \(250\,mL\) solution is prepared by dissolving \(2.65\,g\) of \(\mathrm{Na_2CO_3}\). If molar mass of \(\mathrm{Na_2CO_3}=106\,g\,mol^{-1}\), the molarity is:
ⓐ. \(0.0250\,M\)
ⓑ. \(0.0500\,M\)
ⓒ. \(0.100\,M\)
ⓓ. \(0.250\,M\)
402. A \(10.0\,mL\) sample of \(0.500\,M\) \(\mathrm{H_2SO_4}\) is diluted to \(100\,mL\). The final concentration is:
ⓐ. \(0.0500\,M\)
ⓑ. \(0.1000\,M\)
ⓒ. \(0.2500\,M\)
ⓓ. \(5.000\,M\)
403. A \(0.100\,M\) \(\mathrm{Ba(OH)_2}\) solution is used to neutralise \(\mathrm{HCl}\). The balanced equation is \(\mathrm{Ba(OH)_2+2HCl\rightarrow BaCl_2+2H_2O}\). The volume of this base needed to neutralise \(40.0\,mL\) of \(0.100\,M\) \(\mathrm{HCl}\) is:
ⓐ. \(10.0\,mL\)
ⓑ. \(20.0\,mL\)
ⓒ. \(40.0\,mL\)
ⓓ. \(80.0\,mL\)
404. Assertion: When \(100\,mL\) of \(1.0\,M\) solution is diluted to \(1.0\,L\), the final concentration becomes \(0.10\,M\). Reason: During dilution, the amount of solute remains constant while the solution volume increases.
ⓐ. Both Assertion and Reason are true, and Reason explains Assertion
ⓑ. Both Assertion and Reason are true, but Reason does not explain Assertion
ⓒ. Assertion is true, but Reason is false
ⓓ. Assertion is false, but Reason is true
405. A solution is prepared by dissolving \(4.00\,g\) of \(\mathrm{NaOH}\) in water and making the volume \(500\,mL\). If \(20.0\,mL\) of this solution is taken, how many moles of \(\mathrm{NaOH}\) does the aliquot contain? Use \(\mathrm{NaOH}=40.0\,g\,mol^{-1}\).
ⓐ. \(0.00200\,mol\)
ⓑ. \(0.0200\,mol\)
ⓒ. \(0.100\,mol\)
ⓓ. \(0.00400\,mol\)
406. A \(25.0\,mL\) portion of \(0.100\,M\) \(\mathrm{Na_2SO_4}\) is mixed with excess \(\mathrm{BaCl_2}\). For \(\mathrm{Na_2SO_4+BaCl_2\rightarrow BaSO_4+2NaCl}\), the mass of \(\mathrm{BaSO_4}\) formed is closest to \(0.583\,g\). What molar mass of \(\mathrm{BaSO_4}\) has been used?
ⓐ. \(58.3\,g\,mol^{-1}\)
ⓑ. \(116.6\,g\,mol^{-1}\)
ⓒ. \(233\,g\,mol^{-1}\)
ⓓ. \(466\,g\,mol^{-1}\)
407. A learner calculates moles from molarity by using \(n=\frac{V}{M}\). The best correction is:
ⓐ. Use \(n=\frac{M}{V}\), with \(V\) in grams
ⓑ. Use \(n=M+V\), because concentration and volume are added
ⓒ. Use \(n=MV\), but only when \(V\) is in \(mL\)
ⓓ. Use \(n=MV\), with \(V\) in litres when \(M\) is in \(mol\,L^{-1}\)
408. A solution pathway is described below.
A known volume of a solution is given. Its molarity is known. The solute reacts with another substance in a balanced equation. The final answer required is the mass of a product.
The most suitable calculation order is:
ⓐ. solution data \(\rightarrow\) solute moles \(\rightarrow\) product moles \(\rightarrow\) product mass
ⓑ. solution volume \(\rightarrow\) product mass \(\rightarrow\) product moles \(\rightarrow\) solute moles
ⓒ. molarity \(\rightarrow\) product mass \(\rightarrow\) product moles \(\rightarrow\) equation ratio
ⓓ. product mass \(\rightarrow\) solution volume \(\rightarrow\) solute moles \(\rightarrow\) molarity
409. A \(30.0\,mL\) sample of \(0.150\,M\) \(\mathrm{HCl}\) is mixed with \(20.0\,mL\) of \(0.100\,M\) \(\mathrm{NaOH}\). For \(\mathrm{HCl+NaOH\rightarrow NaCl+H_2O}\), the moles of acid left after reaction are:
ⓐ. \(0.00150\,mol\)
ⓑ. \(0.00200\,mol\)
ⓒ. \(0.00250\,mol\)
ⓓ. \(0.00450\,mol\)
410. In a precipitation reaction, \(40.0\,mL\) of \(0.250\,M\) \(\mathrm{Pb(NO_3)_2}\) is mixed with excess \(\mathrm{KI}\). For \(\mathrm{Pb(NO_3)_2+2KI\rightarrow PbI_2+2KNO_3}\), the mass of \(\mathrm{PbI_2}\) formed is closest to: \(\mathrm{PbI_2}=461\,g\,mol^{-1}\).
ⓐ. \(1.15\,g\)
ⓑ. \(2.31\,g\)
ⓒ. \(4.61\,g\)
ⓓ. \(9.22\,g\)
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