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Chemistry · Class 11 Science

Ch 1Basic Concepts of Chemistry and Chemical Calculations — Class 11 Chemistry, concept-first.

This unit opens with a line from the Greek philosopher Democritus -- "we think there is colour, we think there is sweet, we think there is bitter, but in reality there are atoms and a void" -- setting up the idea that the enormous variety we perceive around us is built from a small number of fundamental building blocks…

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Key concepts

Hover a concept to preview it and jump to its most relevant Q&A.

Chapter contents

The NCERT structure, section by section. Open a section to see its questions, then read the concept-first solution.

Introduction

This unit opens with a line from the Greek philosopher Democritus -- "we think there is colour, we think there is sweet, we think there is bitter, but in reality there are atoms and a void" -- setting…

1.1

Chemistry - the Centre of Life

Chemistry is not a subject confined to a laboratory -- it is the science behind the three most basic human needs described in the classical Tamil phrase "Unna unavu, udukka udai, irukka idam" (food to…

1.2

Classification of Matter

Matter is anything that has mass and occupies space; your desk, the air you breathe, and your own body are all matter, and all matter is built from atoms.

1.2.1

Physical Classification of Matter

Matter exists in three familiar physical states -- solid, liquid and gas -- depending on how tightly its particles are held together.

1.2.2

Chemical Classification

Classifying matter by chemical composition gives a different, and more chemically meaningful, split: mixtures versus pure substances.

1.3

Atomic and Molecular Masses

Having classified matter, the next question is: how heavy is an individual atom or molecule, and how do we compare the "weights" of different atoms and compounds? This section builds the relative mass…

1.3.1

Atomic Masses

An atom is extraordinarily small (diameter of the order of 10⁻¹⁰ m) and extraordinarily light (mass of the order of 10⁻²⁷ kg), so its absolute mass cannot be measured directly on any balance.

1.3.2

Molecular Mass

Just as relative atomic mass compares an atom's mass to the unified atomic mass unit, the relative molecular mass of a compound compares the mass of one molecule of it to the same unified atomic mass…

1.4

Mole Concept

Chemists constantly need to talk about huge numbers of atoms or molecules -- literally hundreds of billions of trillions of them in even a small sample -- and counting them one by one is obviously imp…

1.4.1

Avogadro Number

The number of elementary entities present in exactly one mole of any substance -- 6.022 × 10²³ -- is called the Avogadro number (or Avogadro constant), named after the Italian physicist Amedeo Avogadr…

1.4.2

Molar Mass

Molar mass is defined as the mass of one mole of a substance. Numerically, the molar mass of a compound equals the sum of the relative atomic masses of its constituent atoms (i.e.

1.4.3

Molar Volume

Molar volume is the volume occupied by one mole of any substance in the gaseous state, at a stated temperature and pressure.

1.5

Gram Equivalent Concept

Alongside the mole concept, chemistry -- especially analytical chemistry -- makes heavy use of a second, related counting idea: the gram equivalent concept.

1.5.1

Equivalent Mass of Acids, Bases, Salts, Oxidising Agents and Reducing Agents

The equivalence factor n -- and hence the equivalent mass formula E = (molar mass) ÷ n -- takes a different, specific meaning depending on the type of chemical entity:

1.6

Empirical Formula and Molecular Formula

Once you know the elements present in a compound and their mass percentages (from experimental elemental analysis), you can work backwards to the compound's formula.

1.6.1

Determination of Empirical Formula from Elemental Analysis Data

Given the mass-percentage composition of a compound from elemental analysis, its empirical formula is found by a fixed four-step procedure:

1.6.2

Calculation of Molecular Formula from Empirical Formula

The empirical formula only tells you the ratio of atoms -- to get the actual molecular formula, you additionally need the compound's molar mass.

1.7

Stoichiometry

The word stoichiometry comes from the Greek stoicheion (element) and metron (measure) -- it is the numerical relationship between the quantities of the substances that appear in a balanced chemical eq…

1.7.1

Stoichiometric Calculations

Stoichiometry is formally the quantitative mole relationship between reactants and products in a balanced chemical equation.

1.7.2

Limiting Reagents

All of the calculations in Section 1.7.1 assumed the reactants were supplied in exactly the stoichiometric ratio, so that everything reacts completely.

1.8

Redox Reactions

A cut apple turning brown, LPG burning, iron rusting -- all of these everyday changes are oxidation reactions.

1.8.1

Oxidation Number

Oxidation number (also called oxidation state) is the imaginary charge left on an atom once every other atom in the compound is notionally "removed," each atom being assigned its usual oxidation state…

1.8.2

Types of Redox Reactions

Once you can compute oxidation numbers, you can classify every redox reaction into one of five types, based on the pattern of oxidation-number change:

1.8.3

Balancing (the Equation) of Redox Reactions

Balancing a redox equation by simple inspection quickly becomes impractical once several elements change oxidation state at once.

SUMMARY

This unit built, step by step, the quantitative toolkit that the rest of Chemistry relies on.

CONCEPT MAP

The unit's concept map is rooted at "Chemistry - the centre of life" leading into "Chemical substances (matter)", which branches first into Elements and Compounds.

1.9

EVALUATION

The chapter closes with two evaluation sets covering everything above.

ICT Corner

An "ICT Corner" activity box directs students to a free interactive GeoGebra worksheet, "Empirical Formula," inside an "11th Standard Chemistry" GeoGebra workbook (reached by scanning a QR code or vis…

Sample & Board Papers

Sample papers and previous-year board questions for this subject.

+Show 21 questions21 questions
  1. Q1The number of moles of 20 g of substance A, whose molecular weight is 40, is: (a) 0.5 (b) 5 (c) 50 (d) 1Preview
  2. Q2What is the simplest formula of the compound which has the following percentage composition? Carbon 80%, hydrogen 20%.Preview
  3. Q3Calculate the equivalent mass of H2SO4.Preview
  4. Q4The relative molecular mass of ethanol is: (a) 0.46 g (b) 4.6 g (c) 460 g (d) 46 gPreview
  5. Q5Define basicity. Find the basicity of ortho-phosphoric acid.Preview
  6. Q6(a) Calculate the empirical and molecular formula of a compound containing 76.6% carbon, 6.38% of hydrogen and rest oxygen. Its vapour densi…Preview
  7. Q7Tritium nucleus contains: (a) 1p + 2n (b) 1p + 0n (c) 1p + 1n (d) 2p + 1nPreview
  8. Q8Define Gram equivalent mass.Preview
  9. Q9Calculate the oxidation number of underlined elements. (i) C in CO2 (C is underlined) (ii) S in H2SO4 (S is underlined)Preview
  10. Q10Which of the following compound has percentage of Carbon same as that in Ethylene (C2H4) ? (a) Benzene (b) Propene (c) Ethane (d) EthynePreview
  11. Q11Distinguish between oxidation and reduction.Preview
  12. Q12Balance the following equations by Oxidation Number Method. (i) KMnO4 + Na2SO3 -> MnO2 + Na2SO4 + KOH (ii) Cu + HNO3 -> Cu(NO3)2 + NO2 + H2OPreview
  13. Q13(a) A compound on analysis gave Na=14.31%, S=9.97%, H=6.22%, O=69.5%. Calculate the molecular formula of the compound, if all the Hydrogen i…Preview
  14. Q14The number of water molecules in a drop of water weighing 0.018 g is __________. (a) 6.022 x 10^20 (b) 6.022 x 10^26 (c) 9.9 x 10^22 (d) 6.0…Preview
  15. Q15Define equivalent mass.Preview
  16. Q16(a) (i) An organic compound present in vinegar has 40% carbon, 6.6% hydrogen and 53.4% oxygen. Find the empirical formula of the compound. (…Preview
  17. Q17Define Relative Atomic Mass.Preview
  18. Q18Calculate the relative molecular mass of the following. (i) Ethanol (C2H5OH) (ii) Glucose (C6H12O6)Preview
  19. Q19Which one of the following is used as a standard for atomic mass ? (a) ^12_6 C (b) ^12_7 C (c) ^13_6 C (d) ^14_6 CPreview
  20. Q20Distinguish between Oxidation and Reduction.Preview
  21. Q21Explain the preparation of the following compounds. (i) DDT (ii) ChloropicrinPreview

More questions

45 Q
+Show 25 questions25 questions
  1. Q140 ml of methane is completely burnt using 80 ml of oxygen at room temperature. The volume of gas left after cooling to room temperature is…Free
  2. Q2An element X has the following isotopic composition: ²⁰⁰X = 90%, ¹⁹⁹X = 8% and ²⁰²X = 2%. The weighted average atomic mass of the element X…Free
  3. Q3Assertion: Two mole of glucose contains 12.044 × 10²³ molecules of glucose Reason: Total number of entities present in one mole of any subst…Free
  4. Q4Carbon forms two oxides, namely carbon monoxide and carbon dioxide. The equivalent mass of which element remains constant? (a) Carbon (b) ox…Preview
  5. Q5The equivalent mass of a trivalent metal element is 9 g eq⁻¹. The molar mass of its anhydrous oxide is (a) 102 g (b) 27 g (c) 270 g (d) 78 gPreview
  6. Q6The number of water molecules in a drop of water weighing 0.018 g is (a) 6.022 × 10²⁶ (b) 6.022 × 10²³ (c) 6.022 × 10²⁰ (d) 9.9 × 10²²Preview
  7. Q71 g of an impure sample of magnesium carbonate (containing no thermally decomposable impurities) on complete thermal decomposition gave 0.44…Preview
  8. Q8When 6.3 g of sodium bicarbonate is added to 30 g of acetic acid solution, the residual solution is found to weigh 33 g. The number of moles…Preview
  9. Q9When 22.4 litres of H₂(g) is mixed with 11.2 litres of Cl₂(g), each at 273 K at 1 atm, the moles of HCl(g) formed is equal to (a) 2 moles of…Preview
  10. Q10Hot concentrated sulphuric acid is a moderately strong oxidising agent. Which of the following reactions does not show oxidising behaviour?…Preview
  11. Q11Choose the disproportionation reaction among the following redox reactions. (a) 3Mg(s) + N₂(g) → Mg₃N₂(s) (b) P₄(s) + 3NaOH + 3H₂O → PH₃(g)…Preview
  12. Q12The equivalent mass of potassium permanganate in alkaline medium is MnO₄⁻ + 2H₂O + 3e⁻ → MnO₂ + 4OH⁻ (a) 31.6 (b) 52.7 (c) 79 (d) None of th…Preview
  13. Q13Which one of the following represents 180 g of water? (a) 5 moles of water (b) 90 moles of water (c) 6.022 × 10²³/180 molecules of water (d)…Preview
  14. Q147.5 g of a gas occupies a volume of 5.6 litres at 0°C and 1 atm pressure. The gas is (a) NO (b) N₂O (c) CO (d) CO₂Preview
  15. Q15Total number of electrons present in 1.7 g of ammonia is (a) 6.022 × 10²³ (b) 6.022 × 10²²/1.7 (c) 6.022 × 10²⁴/1.7 (d) 6.022 × 10²³/1.7Preview
  16. Q16The correct increasing order of the oxidation state of sulphur in the anions SO₄²⁻, SO₃²⁻, S₂O₄²⁻, S₂O₆²⁻ is (a) SO₃²⁻ < SO₄²⁻ < S₂O₄²⁻ < S₂…Preview
  17. Q17The equivalent mass of ferrous oxalate is (a) molar mass of ferrous oxalate / 1 (b) molar mass of ferrous oxalate / 2 (c) molar mass of ferr…Preview
  18. Q18If Avogadro number were changed from 6.022 × 10²³ to 6.022 × 10²⁰, this would change (a) the ratio of chemical species to each other in a ba…Preview
  19. Q19Two 22.4 litre containers A and B contain 8 g of O₂ and 8 g of SO₂ respectively at 273 K and 1 atm pressure, then (a) Number of molecules in…Preview
  20. Q20What is the mass of precipitate formed when 50 ml of 8.5% solution of AgNO₃ is mixed with 100 ml of 1.865% potassium chloride solution? (a)…Preview
  21. Q21The mass of a gas that occupies a volume of 612.5 ml at room temperature and pressure (25°C and 1 atm pressure) is 1.1 g. The molar mass of…Preview
  22. Q22Which of the following contain the same number of carbon atoms as in 6 g of carbon-12? (a) 7.5 g ethane (b) 8 g methane (c) both (a) and (b)…Preview
  23. Q23Which of the following compound(s) has/have percentage of carbon same as that in ethylene (C₂H₄)? (a) propene (b) ethyne (c) benzene (d) eth…Preview
  24. Q24Which of the following is/are true with respect to carbon-12? (a) relative atomic mass is 12 u (b) oxidation number of carbon is +4 in all i…Preview
  25. Q25Which one of the following is used as a standard for atomic mass? (a) ₆C¹² (b) ₇C¹² (c) ₆C¹³ (d) ₆C¹⁴Preview
+Show 20 questions20 questions
  1. Q26Define relative atomic mass.Free
  2. Q27What do you understand by the term mole?Free
  3. Q28Define equivalent mass.Free
  4. Q29What do you understand by the term oxidation number?Preview
  5. Q30Distinguish between oxidation and reduction.Preview
  6. Q31Calculate the molar mass of the following compounds. i) Urea [CO(NH₂)₂] ii) Acetone [CH₃COCH₃] iii) Boric acid [H₃BO₃] iv) Sulphuric acid [H…Preview
  7. Q32The density of carbon dioxide is equal to 1.965 kg m⁻³ at 273 K and 1 atm pressure. Calculate the molar mass of CO₂.Preview
  8. Q33Which contains the greatest number of moles of oxygen atoms? i) 1 mol of ethanol ii) 1 mol of formic acid iii) 1 mol of H₂OPreview
  9. Q34Calculate the average atomic mass of naturally occurring magnesium using the following data. | Isotope | Isotopic atomic mass | Abundance (%…Preview
  10. Q35In a reaction x + y + z₂ → xyz₂, identify the limiting reagent, if any, in the following reaction mixtures. (a) 200 atoms of x + 200 atoms o…Preview
  11. Q36Mass of one atom of an element is 6.645 × 10⁻²³ g. How many moles of the element are there in 0.320 kg?Preview
  12. Q37What is the difference between molecular mass and molar mass? Calculate the molecular mass and molar mass for carbon monoxide.Preview
  13. Q38What is the empirical formula of the following? i) Fructose (C₆H₁₂O₆) found in honey ii) Caffeine (C₈H₁₀N₄O₂), a substance found in tea and…Preview
  14. Q39The reaction between aluminium and ferric oxide can generate temperatures up to 3273 K and is used in welding metals. (Atomic mass of Al = 2…Preview
  15. Q40How many moles of ethane are required to produce 44 g of CO₂(g) after combustion?Preview
  16. Q41Hydrogen peroxide is an oxidising agent. It oxidises ferrous ion to ferric ion and is reduced itself to water. Write a balanced equation.Preview
  17. Q42Calculate the empirical and molecular formula of a compound containing 76.6% carbon, 6.38% hydrogen and the rest oxygen; its vapour density…Preview
  18. Q43A compound on analysis gave Na = 14.31%, S = 9.97%, H = 6.22% and O = 69.5%. Calculate the molecular formula of the compound, if all the hyd…Preview
  19. Q44Balance the following equations by the oxidation number method. i) K₂Cr₂O₇ + KI + H₂SO₄ → K₂SO₄ + Cr₂(SO₄)₃ + I₂ + H₂O ii) KMnO₄ + Na₂SO₃ →…Preview
  20. Q45Balance the following equations by the ion-electron method. i) KMnO₄ + SnCl₂ + HCl → MnCl₂ + SnCl₄ + H₂O + KCl ii) C₂O₄²⁻ + Cr₂O₇²⁻ → Cr³⁺ +…Preview