The Interior — Exam Prep

Chemistry: Stoichiometry and Solutions

Stoichiometry and solutions for high-school chemistry: study cards over three tiers, the tricky ones, a practice quiz at three levels — Foundation, On-Level, and Challenge — and a lab where you put the mole road in order, graph a strong-acid titration curve and find the equivalence point, sort twelve substances acid / base / salt, and argue from mole counts why four grams of hydrogen outlast sixteen grams of oxygen. Work here, or print it and use a pencil — both count.

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Start Here

Start here

The ratio lives in moles

You are handed grams. The balanced equation gives you a ratio — but not a ratio of grams.

What people get wrong

People often think…

The limiting reactant is whichever you have fewer moles of.

People often think…

A yield over 100% means the reaction produced extra product.

People often think…

Diluting a solution reduces the number of moles of solute.

People often think…

A strong acid is a concentrated acid.

Grams in, moles, ratio, grams out

Watch one

CH₄ + 2O₂ → CO₂ + 2H₂O. How many grams of CO₂ from 16 g of CH₄?

  1. Molar mass of CH₄ is 16 g/mol, so 16 g is 1.0 mol. Now you are allowed to use the ratio.
  2. The ratio CH₄ : CO₂ is 1 : 1, so 1.0 mol of CO₂ comes out.
  3. Molar mass of CO₂ is 44 g/mol.
  4. 1.0 × 44 = 44 g of CO₂. Notice it weighs more than the methane — the oxygen came along. ✓
One sentence, then you move on

Why can a mole ratio not be applied to grams?

Last one — then you're done here

Why can a strong acid be a dilute one?

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