Some Basic Concepts Of Chemistry MCQs | Next 100 Questions
GKaim: Measure. Improve. Achieve.

Some Basic Concepts of Chemistry MCQs with Answers – Part 4 (Class 11 Chemistry)

Timer: Off
Random: Off

311. A sample of a compound gives \(0.250\,mol\) of X atoms and \(0.375\,mol\) of Y atoms. The empirical formula is:
ⓐ. \(\mathrm{XY}\)
ⓑ. \(\mathrm{X_2Y_3}\)
ⓒ. \(\mathrm{X_3Y_2}\)
ⓓ. \(\mathrm{XY_2}\)
312. A compound has empirical formula \(\mathrm{C_2H_5}\). Its vapour-density-based molar mass is found to be \(58\,g\,mol^{-1}\). Using \(\mathrm{C}=12\) and \(\mathrm{H}=1\), the molecular formula is:
ⓐ. \(\mathrm{C_2H_5}\)
ⓑ. \(\mathrm{C_6H_{15}}\)
ⓒ. \(\mathrm{CH_3}\)
ⓓ. \(\mathrm{C_4H_{10}}\)
313. A compound contains \(69.6\%\) oxygen and \(30.4\%\) nitrogen by mass. Using \(\mathrm{N}=14\) and \(\mathrm{O}=16\), its empirical formula is:
ⓐ. \(\mathrm{NO}\)
ⓑ. \(\mathrm{NO_2}\)
ⓒ. \(\mathrm{N_2O_3}\)
ⓓ. \(\mathrm{N_2O_5}\)
314. A compound has empirical formula \(\mathrm{NO_2}\) and molecular mass \(92\,u\). Its molecular formula is:
ⓐ. \(\mathrm{NO_2}\)
ⓑ. \(\mathrm{N_2O_4}\)
ⓒ. \(\mathrm{N_2O_5}\)
ⓓ. \(\mathrm{NO}\)
315. A student obtains the mole ratio \(\mathrm{A}:\mathrm{B}=1:1.33\) while finding an empirical formula. The most suitable next step is:
ⓐ. Write \(\mathrm{AB_{1.33}}\) as the empirical formula
ⓑ. Multiply both by \(3\) to get \(\mathrm{A_3B_4}\)
ⓒ. Round \(1.33\) to \(1\) and write \(\mathrm{AB}\)
ⓓ. Multiply only B by \(3\) and write \(\mathrm{AB_4}\)
316. Study the table below for empirical formula work.
StepStudent action
PAssumes \(100\,g\) sample from percentage data
QConverts each element's mass into moles
RDivides each mole value by the largest mole value
SConverts fractional ratios into whole-number ratios when needed
The step that needs correction is:
ⓐ. Step P
ⓑ. Step Q
ⓒ. Step R
ⓓ. Step S
317. A compound has empirical formula \(\mathrm{CH}\). Its molar mass is \(78\,g\,mol^{-1}\). The molecular formula is:
ⓐ. \(\mathrm{CH}\)
ⓑ. \(\mathrm{C_2H_2}\)
ⓒ. \(\mathrm{C_6H_6}\)
ⓓ. \(\mathrm{C_6H_{12}}\)
318. The balanced equation \(2\mathrm{Mg}+\mathrm{O_2}\rightarrow2\mathrm{MgO}\) shows that:
ⓐ. \(2\,mol\) of \(\mathrm{Mg}\) reacts with \(1\,mol\) of \(\mathrm{O_2}\) to form \(2\,mol\) of \(\mathrm{MgO}\)
ⓑ. \(1\,mol\) of \(\mathrm{Mg}\) reacts with \(2\,mol\) of \(\mathrm{O_2}\) to form \(1\,mol\) of \(\mathrm{MgO}\)
ⓒ. \(2\,g\) of \(\mathrm{Mg}\) reacts with \(1\,g\) of \(\mathrm{O_2}\) to form \(2\,g\) of \(\mathrm{MgO}\)
ⓓ. \(\mathrm{Mg}\) and \(\mathrm{O_2}\) combine in any mole ratio to form \(\mathrm{MgO}\)
319. In the reaction \(\mathrm{N_2}+3\mathrm{H_2}\rightarrow2\mathrm{NH_3}\), how many moles of \(\mathrm{NH_3}\) are formed from \(4.0\,mol\) of \(\mathrm{N_2}\) when hydrogen is in excess?
ⓐ. \(2.0\,mol\)
ⓑ. \(4.0\,mol\)
ⓒ. \(8.0\,mol\)
ⓓ. \(12.0\,mol\)
320. For the reaction \(2\mathrm{H_2}+\mathrm{O_2}\rightarrow2\mathrm{H_2O}\), the amount of \(\mathrm{O_2}\) needed to react exactly with \(5.0\,mol\) of \(\mathrm{H_2}\) is:
ⓐ. \(5.0\,mol\)
ⓑ. \(7.5\,mol\)
ⓒ. \(10.0\,mol\)
ⓓ. \(2.5\,mol\)
Subscribe
Notify of
guest
0 Comments
Scroll to Top