Q.Calculate the number of atoms in each of the following
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Molecular Mass Calculation
What is Molecular Mass? The Intuition
Imagine you're at a market buying apples. You don't weigh each apple individually — you put a dozen on a scale. The total weight tells you something about the apples, but it also depends on how many apples you have.
Atoms and molecules are unimaginably tiny. A single water molecule (H2O) weighs about 3×10−23 grams. That number is useless for practical chemistry. So instead of working with individual molecules, chemists count them in huge fixed numbers — specifically, 6.022×1023 molecules, which is called one mole.
Molecular mass is simply the mass of one mole of a substance, expressed in grams per mole (g/mol). It answers the question: "If I have 6.022×1023 molecules of this compound, how much would they weigh on a lab balance?"
The number 6.022×1023 is Avogadro's constant. It's chosen so that the mass of one mole of carbon-12 atoms is exactly 12 grams — matching the atomic mass unit scale perfectly.
The Precise Definition
Molecular mass (also called molar mass) is the mass of one mole of a molecular substance. It is numerically equal to the sum of the atomic masses of all atoms in the molecule, expressed in g/mol.
For example:
- Water (H2O): 2 hydrogen atoms + 1 oxygen atom
- Atomic mass of H = 1.008 g/mol
- Atomic mass of O = 16.00 g/mol
- Molecular mass of H2O = 2(1.008)+16.00=18.016 g/mol
Molecular mass=∑(number of atoms of each element×atomic mass of that element)
How to Calculate It — Step by Step
Let's take glucose, C6H12O6, as a worked example.
Step 1: Identify each element and its count
- Carbon (C): 6 atoms
- Hydrogen (H): 12 atoms
- Oxygen (O): 6 atoms
Step 2: Look up atomic masses (from the periodic table)
- C: 12.01 g/mol
- H: 1.008 g/mol
- O: 16.00 g/mol
Step 3: Multiply and add
Molecular mass=6(12.01)+12(1.008)+6(16.00)
=72.06+12.096+96.00
=180.156 g/mol
Always keep at least 2 decimal places from the periodic table. For exam problems, they usually give you atomic masses — use exactly what's provided.
Why This Matters
Molecular mass is the bridge between the microscopic world (atoms and molecules) and the macroscopic world (grams you can weigh). Once you know the molecular mass, you can:
- Convert grams to moles: moles=molecular massmass in grams
- Convert moles to grams: mass=moles×molecular mass
- Determine the number of molecules: molecules=moles×6.022×1023
Do not confuse molecular mass with atomic mass. Atomic mass refers to a single element (like oxygen = 16.00 g/mol). Molecular mass refers to a compound (like CO2 = 44.01 g/mol). Also, for ionic compounds like NaCl, we use formula mass (same calculation, but the substance isn't molecular).
Common Exam Pitfalls
- Forgetting to multiply by the subscript. In H2SO4, there are 2 hydrogens, not 1. …
Why this formula?
Stoichiometry & Mole Calculation: The "Why" Behind the Formula
Let's build this from the ground up — not as a list of formulas to memorise, but as a logical chain of reasoning.
1. The Core Question: What is a Mole?
A mole is simply a counting unit, like a dozen (12) or a gross (144). But instead of 12, a mole contains 6.022×1023 particles (Avogadro's number, NA).
Why this number?
It was chosen so that 1 mole of any substance has a mass in grams equal to its atomic/molecular mass in amu.
- Example: 1 atom of carbon-12 has mass 12 amu.
- 1 mole of carbon-12 has mass 12 grams.
This is the bridge between the microscopic (atoms/molecules) and the macroscopic (grams we can weigh).
2. The Fundamental Relationship
The key formula is:
n=Mm
Where:
- n = number of moles
- m = mass of substance (in grams)
- M = molar mass (in g/mol)
Why does this work?
Think of it as a conversion factor:
If 1 mole of a substance weighs M grams, then m grams contains Mm moles.
Derivation logic:
- Molar mass M tells you: "1 mol = M g"
- So the conversion factor is M g1 mol
- Multiply mass m by this factor: m×M1=Mm moles
3. Connecting to Number of Particles
n=NAN
Where:
- N = number of particles (atoms, molecules, ions)
- NA=6.022×1023 particles/mol
Why?
- 1 mole = NA particles
- So N particles = NAN moles
Combine both formulas:
Mm=NAN
This single equation ties mass, molar mass, number of particles, and Avogadro's number together.
4. The Gas Volume Connection (for gases at STP)
For gases only:
n=22.4 L/molV
Why 22.4 L?
From the ideal gas law: PV=nRT
At STP (Standard Temperature and Pressure: 0°C, 1 atm):
- P=1 atm
- T=273.15 K
- R=0.0821 L·atm/(mol·K)
For n=1 mole:
V=PnRT=11×0.0821×273.15≈22.4 L
So 1 mole of any ideal gas occupies 22.4 L at STP. This is a consequence of the gas laws, not a definition.
5. The Stoichiometry Chain: From One Substance to Another
In a balanced chemical equation like:
aA+bB→cC+dD
The coefficients tell you the mole ratio:
moles of Bmoles of A=ba
Why this works: …
Concept: Mole–atom conversion using Avogadro's number and molar mass relationships.
(i) 52 moles of Ar
One mole contains NA=6.022×1023 atoms (Avogadro's number). For 52 moles:
Number of atoms=52×6.022×1023=3.13×1025 atoms
(ii) 52 u of He
The mass of one He atom is 4 u (its atomic mass). Number of atoms:
Number of atoms=452=13 atoms
(iii) 52 g of He …
Convert moles, atomic mass units, and grams to atoms using Avogadro's number (NA=6.022×1023 atoms/mol). For 52 moles of Ar: 3.13×1025 atoms; for 52 u of He: 13 atoms; for 52 g of He: 7.83×1024 atoms.
The bridge between the macroscopic world (grams, moles) and the atomic world (individual atoms) is Avogadro's number, NA=6.022×1023 particles per mole. The strategy depends on what you're given: moles connect directly to atoms, atomic mass units tell you how many atoms by comparing to one atom's mass, and grams require conversion through molar mass.
(i) 52 moles of Ar
When you already have moles, the path is immediate.
1. Recognize the direct relationship
One mole of any substance contains exactly NA particles. For argon atoms:
Number of atoms=moles×NA
2. Calculate
N=52×6.022×1023=3.13×1025 atoms
(ii) 52 u of He
Atomic mass units measure mass on the atomic scale, where 1 u is defined as 121 the mass of a carbon-12 atom.
1. Find the mass of one helium atom
Helium has an atomic mass of approximately 4 u. This means one He atom weighs 4 u.
2. Divide total mass by mass per atom
Number of atoms=Mass per atomTotal mass=4 u/atom52 u=13 atoms
This is a tiny sample—just 13 atoms! The atomic mass unit is so small that even 52 u represents only a handful of helium atoms.
(iii) 52 g of He
Grams are macroscopic units, so we convert through moles.
1. Convert grams to moles using molar mass
Helium's molar mass is 4 g/mol (numerically equal to its atomic mass, but in grams per mole instead of u per atom). …
Method: Mole-Atom Conversion via Avogadro’s Number
This method uses the fundamental relationship:
- 1 mole of any substance contains 6.022×1023 particles (atoms, molecules, ions, etc.)
- This number is Avogadro’s constant (NA)
Steps for each case
(i) 52 moles of Ar
Step 1: Identify the given quantity — moles of Argon atoms.
Step 2: Use the conversion factor:
Number of atoms=moles×NA
Step 3: Substitute:
Atoms=52×6.022×1023
Step 4: Calculate:
=3.13144×1025 atoms
Answer: 3.13×1025 atoms (rounded to 3 significant figures)
(ii) 52 u of He
Step 1: Understand the unit — u (atomic mass unit) means mass of a single atom.
Step 2: Find atomic mass of Helium from periodic table:
Atomic mass of He=4u
This means 1 atom of He has mass 4 u.
Step 3: Set up proportion:
1 atom→4 u
x atoms→52 u
Step 4: Solve:
x=452=13 atoms
Answer: 13 atoms
(iii) 52 g of He
Step 1: Given mass in grams — first convert to moles.
Step 2: Molar mass of He = 4 g/mol (same numerical value as atomic mass, but in g/mol).
Step 3: Find moles: …
Here are the common mistakes students make when solving molecular mass and atom-counting problems like this one, along with how to avoid each.
Mistake 1: Confusing Moles, Grams, and Atomic Mass Units (u)
Students often treat 52 u of He the same as 52 g of He or 52 moles of Ar.
- Why it happens: The number "52" looks the same, but the units are completely different.
- How to avoid: Always underline the unit before solving. Ask yourself:
- Is it moles? → Multiply by NA (Avogadro’s number).
- Is it grams? → First convert to moles using molar mass.
- Is it u (atomic mass units)? → The number of atoms = the given number (since 1 u = mass of 1 nucleon, and He has mass 4 u per atom).
Key rule:
- For a substance in u: number of atoms = given value ÷ atomic mass in u.
- For a substance in g: use n=molar massmass, then multiply by NA.
- For a substance in moles: directly multiply by NA.
Mistake 2: Using Wrong Molar Mass for Helium
Students sometimes take molar mass of He as 2 g/mol (thinking of He₂ molecule) instead of 4 g/mol.
- Why it happens: Confusion between atomic mass (He is monatomic) and molecular mass (like O₂, N₂).
- How to avoid: Remember: Noble gases are monatomic.
- Atomic mass of He = 4 u
- Molar mass of He = 4 g/mol
Mistake 3: Forgetting Avogadro’s Number (NA) in Mole-to-Atom Conversion
Students write:
52 moles of Ar = 52 atoms ✗
- Why it happens: They forget that 1 mole = 6.022×1023 particles.
- How to avoid: Always write the conversion factor:
1 mole=6.022×1023 atoms
So for 52 moles:
Number of atoms=52×6.022×1023
Mistake 4: Mixing Up “u” and “g” in the Same Problem
In part (ii): 52 u of He
Students incorrectly convert it like grams:
52 u → 52 g → then divide by 4 → then multiply by NA ✗
- Why it happens: They don’t realize that u is a unit of mass per atom, not a bulk mass.
- How to avoid:
- 1 atom of He has mass 4 u.
- So number of atoms = 4 u/atom52 u=13 atoms. …
- AP EAPCET 2025Set ap-2025-05-20-AN1 markMCQQ.Which of the following has the highest mass ? (A) 0.5 g atom of oxygen (B) 0.5 mol of ozone (C) 3×1022 molecules of nitrogen (D) 5.6 L of CO2 at STP
›Reveal solutionSolution
Converting each quantity to grams shows 0.5 mol of ozone (24 g) has the highest mass among the four options.
Concept and Intuition
This tests careful unit conversion between grams, moles, molecules, and STP volumes into a common basis (mass in grams) so they can be directly compared.
Step-by-Step Solution
- (A) 0.5 g-atom of oxygen = 0.5 mol O atoms × 16 g/mol = 8 g.
- (B) 0.5 mol of ozone (O₃, molar mass 48 g/mol) = 0.5×48=24 g.
- (C) 3×1022 molecules of N₂: moles =6.022×10233×1022≈0.0498 mol ×28 g/mol≈1.39 g.
- (D) 5.6 L CO₂ at STP: moles =22.45.6=0.25 mol ×44 g/mol=11 g. …
- AP EAPCET 2022Set eng-2022-07-06-FN1 markMCQQ.What is the atomic mass of Fe? Given abundance of 54Fe = 10%, 56Fe = 85%, 57Fe = 5% (A) 55.65 (B) 55.75 (C) 55.85 (D) 55.95
›Reveal solutionSolution
Atomic mass is the abundance-weighted average of isotopic masses; for Fe here it works out to 55.85.
Concept and Intuition
The atomic mass listed on the periodic table is not any single isotope's mass — it is the average of all naturally occurring isotopes, weighted by how abundant each one is.
Step-by-Step Solution
- Multiply each isotope's mass by its fractional abundance: 54Fe:0.10×54=5.4; 56Fe:0.85×56=47.6; 57Fe:0.05×57=2.85.
- Sum: 5.4+47.6+2.85=55.85. …
- AP EAPCET 2021Set ap-2021-10-05-FN1 markMCQQ.The Vapor density of a mixture of NO2 and N2O4 is 38.3 at 26.70c. Calculate the number of moles of NO2 in 100 g of the mixture ________. (A) 0.437 (B) 0.537 (C) 0.347 (D) 0.490
›Reveal solutionSolution
Using vapour density to get the average molar mass of the NO2/N2O4 mixture and a mole-fraction balance gives 0.437 mol of NO2 in 100 g of mixture.
Concept and Intuition
Vapour density relates to molar mass by M=2×VD; for a mixture of two related gases, the observed (average) molar mass is a mole-fraction-weighted average of the pure components' molar masses.
Step-by-Step Solution
- Average molar mass of the mixture: Mavg=2×38.3=76.6 g/mol.
- Let x = mole fraction of NO2 (M=46), so (1−x) = mole fraction of N2O4 (M=92): 46x+92(1−x)=76.6.
- Solve: 92−46x=76.6⇒46x=15.4⇒x=0.3348.
- Total moles of mixture in 100 g: n=76.6100=1.305 mol. …
- AP EAPCET 2021Set eng-2021-08-23-FN1 markMCQQ.If one atom of an element X weighs 6.643×10−23 g. Then find the number of moles of atoms in 50 kg of element X. (A) 500 moles (B) 125 moles (C) 1250 moles (D) 50 moles
›Reveal solutionSolution
Tests converting single-atom mass to molar mass via Avogadro's number, then finding moles in a bulk sample. Answer: 1250 moles.
Concept and Intuition
The mass of a single atom, multiplied by Avogadro's number (6.022×1023, the number of atoms in one mole), gives the molar mass of the element. Once we know the molar mass, converting a bulk mass into moles is a straightforward division.
Step-by-Step Solution
- Molar mass M=(mass of one atom)×NA=6.643×10−23 g×6.022×1023 mol−1.
- M≈6.643×6.022≈40.01 g/mol (this is calcium, atomic mass 40). …
- AP EAPCET 2021Set eng-2021-08-24-AN1 markMCQQ.The equivalent weight of Fe in Fe2O3 is ______ (Atomic mass of Fe=56 g mol−1) (A) 56.0 (B) 18.6 (C) 28.0 (D) 14.0
›Reveal solutionSolution
Equivalent weight of an element in a compound is its atomic mass divided by its valence (oxidation number) in that compound; for Fe(III) in Fe2O3, this gives 56/3≈18.6.
Concept and Intuition
Equivalent weight expresses how much mass of an element corresponds to a single 'unit of combining power' (one unit of charge/valence). It is defined as Equivalent weight=ValenceAtomic mass. The valence to use is the oxidation state the element actually has in the given compound.
Step-by-Step Solution
- In Fe2O3, oxygen is −2; overall neutral, so 2×(Fe oxidation state)+3×(−2)=0⇒ Fe oxidation state =+3.
- Equivalent weight of Fe =valenceAtomic mass of Fe=356. …
- AP EAPCET 2021Set eng-2021-08-25-AN1 markMCQQ.3.011×1022 atoms of an element weigh 1.15 gm. The atomic mass of the element is ______ (A) 10 amu (B) 2.3 amu (C) 35.5 amu (D) 23 amu
›Reveal solutionSolution
Converting the given number of atoms to moles (via Avogadro's number) and dividing the given mass by that mole count gives an atomic mass of 23 amu — consistent with sodium.
Concept and Intuition
The mole concept links a countable number of atoms to a measurable mass via Avogadro's number (6.022×1023 per mole) and molar mass (mass per mole). Given both the atom count and the corresponding mass, we can directly compute the molar (atomic) mass.
Step-by-Step Solution
- Convert atom count to moles:
n=6.022×10233.011×1022=0.05 mol
- Atomic mass = mass per mole:
M=ngiven mass=0.05 mol1.15 g=23 g/mol
- So the atomic mass is 23 amu.
Common Mistakes …
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