Some Basic Concepts of Chemistry

Chemistry · Class 11

Simulation · Chemistry · Class 11

From grams to moles to atoms

From the lesson The mole and molar mass in Some Basic Concepts of Chemistry. Change the values and watch what happens.

From grams to moles to atomsChemistry · Class 11

The idea behind it

NCERT § "Mole Concept and Molar Masses"

  • The mole is the SI unit for amount of substance; one mole of anything contains 6.022 × 10²³ elementary entities (atoms, molecules, ions or formula units).
  • This number is the Avogadro constant, Nᴀ = 6.022 × 10²³ mol⁻¹.
  • Molar mass is how many grams one mole of a substance weighs; numerically it equals the atomic, molecular or formula mass in u (water: 18.02 u per molecule, 18.02 g mol⁻¹).
  • Number of moles n = given mass / molar mass; number of particles = n × Nᴀ.
  • Always check which particle is asked for: one mole of NH₃ has Nᴀ molecules but 3Nᴀ hydrogen atoms and 4Nᴀ atoms in total.
  • For gases, NCERT's stoichiometry example takes one mole as 22.7 L, the molar volume of an ideal gas at 273.15 K and 1 bar; the older figure of 22.4 L belongs to 273.15 K and 1 atm.