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Matter: States, Properties, and Why It All Changes

On the current Chemistry CBE, what's assessed is writing and balancing chemical equations by conservation of mass and recognizing the five reaction types — synthesis, decomposition, single and double replacement, and combustion (TEKS 9A, 9B). The opening material — states of matter, physical-versus-chemical properties, and mixtures versus pure substances — is foundational background, not among the student expectations under the 2020 Chemistry TEKS.

8 minTEKS 9A-9DChemistry
WHAT'S ON THE EXAM

On the current Chemistry CBE, the reaction types — synthesis, decomposition, single and double replacement, and combustion — and writing and balancing equations by conservation of mass are assessed (TEKS 9A and 9B). The states of matter, the physical-versus-chemical property distinction, and mixtures versus pure substances are foundational background, not among the student expectations under the 2020 Chemistry TEKS. We keep these sections because the chemistry is real and the assessed material assumes it.

Matter is anything that takes up space and has mass

That seemingly trivial definition does heavy work. Light is not matter (no mass, no volume in the everyday sense). A magnetic field is not matter. But everything chemistry studies — atoms, molecules, ions, solutions, gases, the air you breathe — is matter.

Particle arrangement in solids, liquids, and gasesSolidfixed latticeLiquidclose but mobileGasfar apart, fast

Matter exists in states. The three states of matter:

  • Solid — definite shape, definite volume. Particles vibrate in fixed positions.
  • Liquid — indefinite shape (takes the container's shape), definite volume. Particles slide past each other.
  • Gas — indefinite shape AND volume (fills the container). Particles move freely, far apart.

(Plasma — ionized gas at extreme temperatures — is a fourth state, less commonly tested.)

Two ways to describe a property

Intensive properties don't change with sample size: density, temperature, color, melting point, refractive index. A spoonful of mercury and an Olympic pool of mercury both have density 13.6 g/cm³.

Extensive properties DO change with size: mass, volume, total heat content, length. The pool has vastly more mass than the spoonful.

Then separately:

  • Physical property — can be observed without changing the substance's identity (color, melting point, density).
  • Chemical property — describes how the substance REACTS (flammability, reactivity with acid).

Physical change vs chemical change

A physical change alters form but not identity. Ice melting into water is still H₂O — the molecules are unchanged, just rearranged. Tearing paper, dissolving sugar in water, boiling water — all physical changes.

Six phase transitions — endothermic (energy in ↑) or exothermic (energy out ↓)SolidLiquidGasmelting (+E)freezing (−E)evaporation (+E)condensation (−E)sublimation (+E) — solid → gas directdeposition (−E) — gas → solid directendothermic (system absorbs heat, feels cold)exothermic (system releases heat, feels hot)

A chemical change forms new substances with new properties. Iron rusting (Fe + O₂ → Fe₂O₃), wood burning (combustion), baking soda + vinegar fizzing (acid-base). The original substance is gone; new substances exist.

Five indicators of chemical change to memorize:

  1. Color change (and not from physical mixing)
  2. Gas production (bubbles without boiling)
  3. Precipitate formation (insoluble solid from clear liquids)
  4. Heat/light emission (or sustained temperature change)
  5. Difficult to reverse (you can't unburn the wood)

Pure substance vs mixture

  • Pure substance — one type only. Either an ELEMENT (a single atom type: Au, O₂, Fe) or a COMPOUND (atoms chemically bonded in a fixed ratio: NaCl, H₂O, CO₂).
  • Mixture — two or more substances physically combined, separable by physical means.
    • HOMOGENEOUS = uniform throughout (salt water, air, brass)
    • HETEROGENEOUS = non-uniform, distinct regions (oil + water, sand + water, granola)

Conservation of mass — the master rule

In any chemical reaction at the macroscopic scale, mass is neither created nor destroyed. The total mass of the reactants equals the total mass of the products. (Antoine Lavoisier proved this in 1789 with sealed-flask experiments.)

Why this matters: every chemical equation must BALANCE — same atoms in equal counts on both sides. If you start with 2 mol H₂ and 1 mol O₂, you cannot end with 1 mol H₂O — there are 4 H atoms on the left and only 2 on the right. The balanced equation is 2 H₂ + O₂ → 2 H₂O.

Physical change: same substance, new form. Chemical change: new substance.Physical changeicemeltwatersame H₂O moleculesChemical changewood + O₂burnash + CO₂ + H₂Onew substances formed

Five reaction types you must recognize on sight

  • Synthesis (combination): A + B → AB. Two or more reactants combine into ONE product. Example: 2 H₂ + O₂ → 2 H₂O.
  • Decomposition: AB → A + B. One compound splits into simpler substances. Example: 2 KClO₃ → 2 KCl + 3 O₂.
  • Single replacement: A + BC → AC + B. A more reactive element displaces another. Example: Zn + CuSO₄ → ZnSO₄ + Cu.
  • Double replacement: AB + CD → AD + CB. Two compounds swap partners, often producing a precipitate, gas, or water. Example: AgNO₃ + NaCl → AgCl(s) + NaNO₃.
  • Combustion: Fuel + O₂ → CO₂ + H₂O + energy. Burning hydrocarbons in air. Example: CH₄ + 2 O₂ → CO₂ + 2 H₂O.

Check yourself

Quick check #1
Which of the following is a CHEMICAL change rather than a physical change?
Quick check #2
The reaction 2 KClO₃ → 2 KCl + 3 O₂ is best classified as a:

Practice with CBE-style practice questions