Among the following, choose the ones with equal number of atoms
A. \(212 ~g ~\text{of}~Na_2CO_3 (s) \text{[molar mass}=106 ~g]\)
B. \(~248 g ~\text{of}~ {Na}_2 \mathrm{O}({s}) [\text{molar mass} =62 \mathrm{~g} ]\)
C. \(240 g ~\text{of} ~NaOH (s)~ [\text{molar mass} =40 \mathrm{~g} \)
D. \( 12 g~ \text{of}~ \mathrm{H}_2(\mathrm{~g})[ \text{molar mass} =2 \mathrm{~g}].\)
E. \( 220 g~ \text{of} ~\mathrm{CO}_2(\mathrm{~g})[\text{ molar mass }=44 \mathrm{~g}]\)
Choose the correct answer from the options given below:
1. B, C, and D only 
2. B, D, and E only 
3. A, B, and C only 
4. A, ,B and D only 
Subtopic:  Moles, Atoms & Electrons |
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Dalton's Atomic theory could not explain which of the following? 
1. Law of multiple proportion
2. Law of gaseous volume
3. Law of conservation of mass 
4. Law of constant proportion 
Subtopic:  Introduction |
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Which of the following contains the highest number of helium atoms?

1. 4 u of helium
2. 4 g of helium
3. 2.27 L of helium at STP
4. 4 mol of helium
Subtopic:  Moles, Atoms & Electrons |
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A compound X contains 32% of A, 20% of B and remaining percentage of C. Then, the empirical formula of X is :
(Given atomic mass of A = 64; B = 40; C = 32u)
1. ABC3
2. AB2C2
3. ABC4
4. A2BC2
Subtopic:  Empirical & Molecular Formula |
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4.74 g of an inorganic compound contains 0.39g of K, 0.27 g of Al, 1.92 g of \(\mathrm{SO_4}\) radicals and 2.16 g of water. If molar mass of the compound is \(948 \mathrm{~g} \mathrm{~mol}^{-1},\) the molecular formula of the inorganic compound is:
1. \(\mathrm{{KAl}({SO}_4)_2 \cdot 12 {H}_2 {O}}\)
2. \(\mathrm{{K}_2 {Al}_2({SO}_4)_6 \cdot 12 {H}_2 {O}}\)
3. \(\mathrm{{K}_2 {SO}_4 \cdot {Al}_2({SO}_4)_3 \cdot24 {H}_2 {O}}\)
4. \(\mathrm{{K}_2 {SO}_6 \cdot {Al}_2({SO}_4)_3 \cdot12 {H}_2 {O}}\)
Subtopic:  Empirical & Molecular Formula |
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Molar mass of a compound \(\text{(X)}\) whose \(2.6 \mathrm{~mol}\) weighs \(312 \mathrm{~g}\) is:
1. \(312 \mathrm{~g} \mathrm{~mol}^{-1}\) 2. \(120 \mathrm{~g} \mathrm{~mol}^{-1}\)
3. \(60 \mathrm{~g} \mathrm{~mol}^{-1}\) 4. \(811.2 \mathrm{~g} \mathrm{~mol}^{-1}\)
Subtopic:  Empirical & Molecular Formula |
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How much glucose is needed to prepare 250 mL of a 1/20 M (M/20) glucose solution?
(Molar mass of glucose: 180 g/mol)

1. 2.25 g
2. 4.5 g
3. 0.44 g
4. 1.125 g
Subtopic:  Concentration Based Problem |
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1.0 g of \(H_2\) has same number of molecules as in:
1. 14 g of \(N_2\) 2. 18 g of \(H_2O\)
3. 16 g of CO  4. 28 g of \(N_2\)
Subtopic:  Moles, Atoms & Electrons |
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The mass of CO2 produced by heating 20 g of 20% pure limestone as per the equation given below is:
\(\mathrm{CaCO}_3(\mathrm{~s}) \xrightarrow{\text { heat }} \mathrm{CaO}(s)+\mathrm{CO}_2(\mathrm{~g})\)
1. 1.32 g  2. 1.12 g 
3. 1.76 g  4. 2.64 g
Subtopic:  Equation Based Problem |
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Select the correct statements from the following: 
A: Atoms of all elements are composed of two fundamental particles.
B: The mass of the electron is \(9.10939 \times 10^{-31} \mathrm{~kg} \text {. }\)
C: All the isotopes of a given element show the same chemical properties.
D: Protons and electrons are collectively known as nucleons. 
E: Dalton's atomic theory regarded the atom as an ultimate particle of matter. 
Choose the correct answer from the options given below:
1. B, C and E only  2. A, B and C only 
3. C, D and E only  4. A and E only 
Subtopic:  Introduction |
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