πŸ”¬ GCSE Combined Science

Biology, Chemistry, and Physics revision notes covering the full combined science specification.

AQA Edexcel OCR

Biology – Cells & Organisation

Eukaryotic vs Prokaryotic Cells

  • Eukaryotic: plant and animal cells β€” have a nucleus and membrane-bound organelles
  • Prokaryotic: bacteria β€” no nucleus, circular DNA, smaller (1–10 Β΅m)

Animal Cell Organelles

  • Nucleus: contains DNA; controls cell activity
  • Mitochondria: site of aerobic respiration (ATP production)
  • Ribosomes: protein synthesis
  • Cell membrane: controls what enters and leaves

Additional Plant Cell Structures

  • Cell wall: cellulose; provides support
  • Chloroplasts: contain chlorophyll; site of photosynthesis
  • Permanent vacuole: contains cell sap; maintains turgor

Diffusion, Osmosis & Active Transport

  • Diffusion: movement of particles from high β†’ low concentration (passive)
  • Osmosis: movement of water through a partially permeable membrane from dilute β†’ concentrated solution
  • Active transport: movement against concentration gradient β€” requires energy (ATP)

Biology – Infection & Response

Pathogens

  • Bacteria: reproduce rapidly; produce toxins. Treated with antibiotics.
  • Viruses: invade cells and replicate inside. No cure β€” only vaccination prevents.
  • Fungi: e.g. athlete's foot. Treated with antifungals.
  • Protists: e.g. malaria (spread by mosquito vectors)

The Immune System

  • White blood cells: phagocytes (engulf pathogens) and lymphocytes (produce antibodies)
  • Antibodies are specific to one antigen (lock-and-key model)
  • Memory cells remain after infection β†’ faster response on re-infection (immunity)
  • Vaccination: introduces dead/weakened pathogen to stimulate antibody production without illness

Herd immunity: when enough of the population is vaccinated, the pathogen cannot spread easily, protecting those who can't be vaccinated.

Biology – Bioenergetics

Photosynthesis 6COβ‚‚ + 6Hβ‚‚O β†’ C₆H₁₂O₆ + 6Oβ‚‚ (using light energy)
  • Limiting factors: light intensity, COβ‚‚ concentration, temperature
  • Light-dependent stage: in thylakoid membrane; splits water, produces ATP and NADPH
  • Light-independent (Calvin cycle): in stroma; uses COβ‚‚ to produce glucose
Aerobic Respiration C₆H₁₂O₆ + 6Oβ‚‚ β†’ 6COβ‚‚ + 6Hβ‚‚O (+ATP energy)
Anaerobic Respiration (animals) Glucose β†’ lactic acid (+small amount of ATP)
Anaerobic Respiration (yeast/plants) Glucose β†’ ethanol + COβ‚‚ (+small amount of ATP)

Biology – Homeostasis

Homeostasis is the maintenance of a stable internal environment. All control systems use negative feedback.

  • Blood glucose: insulin (lowers) and glucagon (raises), secreted by the pancreas
  • Body temperature: hypothalamus detects change β†’ sweating/vasodilation (hot) or shivering/vasoconstriction (cold)
  • Kidneys: filter blood; control water and ion balance; ADH controls water reabsorption

Biology – Inheritance, Variation & Evolution

  • DNA is a double helix made of nucleotides (base, sugar, phosphate)
  • Base pairs: A–T, C–G
  • Genes: sections of DNA that code for proteins
  • Alleles: different versions of a gene
  • Dominant allele expressed if one or two copies present (capital letter)
  • Recessive allele only expressed if two copies present (lowercase)
  • Punnet squares show the probability of offspring genotypes
  • Sex determination: XX = female, XY = male
Natural Selection (Darwin) Variation β†’ Competition β†’ Survival of the fittest β†’ Reproduction β†’ Inherited traits spread

Biology – Ecology

  • Food chain: producer β†’ primary consumer β†’ secondary consumer β†’ tertiary consumer
  • Only ~10% of energy is passed between trophic levels
  • Carbon cycle: photosynthesis (absorbed), respiration/combustion (released), decomposition
  • Nitrogen cycle: nitrogen-fixing bacteria β†’ nitrates β†’ taken up by plants β†’ decomposers return to soil
  • Biodiversity is maintained by reducing deforestation, land use, and pollution

Chemistry – Atomic Structure & the Periodic Table

  • Atom: protons + neutrons (nucleus) + electrons (shells)
  • Atomic number = number of protons; Mass number = protons + neutrons
  • Isotopes: same element, different number of neutrons
  • Group number = number of outer electrons; Period = number of electron shells
  • Group 1 (alkali metals): very reactive, 1 outer electron, react with water to give Hβ‚‚ and metal hydroxide
  • Group 7 (halogens): 7 outer electrons; more reactive further up the group
  • Group 0 (noble gases): full outer shell, very unreactive

Chemistry – Bonding & Structure

  • Ionic bonding: transfer of electrons between metal and non-metal; forms lattice β€” high melting point, conducts when dissolved/melted
  • Covalent bonding: sharing of electrons between non-metals; can be simple molecular (low mp) or giant covalent (diamond β€” very high mp)
  • Metallic bonding: delocalised electrons in a sea; conducts electricity; malleable
  • Nanoparticles (1–100 nm): very high surface area to volume ratio; used in medicine, sun cream, electronics

Chemistry – Quantitative Chemistry

The Mole Moles = mass (g) Γ· relative formula mass (Mr) Mr = sum of all atomic masses in formula
Concentration Concentration (mol/dmΒ³) = moles Γ· volume (dmΒ³)
  • Atom economy = (mass of desired product Γ· total mass of products) Γ— 100
  • % yield = (actual yield Γ· theoretical yield) Γ— 100
  • Avogadro's number: 6.02 Γ— 10Β²Β³ particles per mole

Chemistry – Rates of Reaction & Equilibrium

  • Rate increases with: higher temperature, higher concentration, larger surface area, catalyst
  • Collision theory: more frequent/energetic collisions = faster rate
  • Activation energy: minimum energy needed for a reaction to occur
  • Le Chatelier's Principle: if conditions change, equilibrium shifts to oppose that change
  • Increasing temperature β†’ shifts towards endothermic direction
  • Increasing pressure β†’ shifts towards fewer moles of gas

Chemistry – Organic Chemistry

  • Alkanes (Cβ‚™Hβ‚‚β‚™β‚Šβ‚‚): saturated; single bonds; e.g. methane, ethane
  • Alkenes (Cβ‚™Hβ‚‚β‚™): unsaturated; C=C double bond; e.g. ethene
  • Test for alkenes: bromine water turns from orange to colourless
  • Crude oil: fractional distillation separates into fractions by boiling point
  • Cracking: breaks long-chain hydrocarbons into shorter, more useful ones (+ alkenes)
  • Polymers made by addition polymerisation of alkene monomers

Physics – Forces & Motion

Key Equations F = ma (Force = mass Γ— acceleration) v = u + at (velocity = initial velocity + acceleration Γ— time) vΒ² = uΒ² + 2as s = ut + Β½atΒ² W = mg (weight = mass Γ— gravitational field strength) p = mv (momentum = mass Γ— velocity)
  • Resultant force: vector sum of all forces on an object
  • Newton's 3rd law: every action has an equal and opposite reaction
  • Terminal velocity: when drag = weight; acceleration = 0
  • Stopping distance = thinking distance + braking distance

Physics – Energy

Energy Equations KE = Β½mvΒ² GPE = mgh E = QV (electrical energy) Efficiency = useful output Γ· total input (Γ— 100 for %) P = E/t = IV (Power)
  • Energy is conserved (cannot be created or destroyed)
  • Specific heat capacity: E = mcΞ”T (energy to raise temperature)
  • Specific latent heat: E = mL (energy for change of state, no temperature change)
  • Renewable: solar, wind, tidal, hydroelectric β€” low carbon but variable output
  • Non-renewable: fossil fuels, nuclear β€” reliable but finite/polluting

Physics – Waves

Wave Equations v = fΞ» (wave speed = frequency Γ— wavelength) T = 1/f (period = 1 Γ· frequency)
  • Transverse waves: oscillation perpendicular to direction of travel (light, water)
  • Longitudinal waves: oscillation parallel to direction of travel (sound)
  • EM spectrum (low β†’ high frequency): radio, microwave, infrared, visible, UV, X-ray, gamma
  • Refraction: change of speed at boundary causes bending of waves
  • Total internal reflection: occurs when angle > critical angle inside a denser medium (optical fibres)

Physics – Electricity

Circuit Laws V = IR (Ohm's Law: Voltage = Current Γ— Resistance) P = IV = IΒ²R = VΒ²/R Series: I same, V splits, R_total = R₁ + Rβ‚‚ Parallel: V same, I splits, 1/R = 1/R₁ + 1/Rβ‚‚
  • Charge Q = It (charge = current Γ— time)
  • Resistors in parallel have lower total resistance than any individual resistor
  • Diode: only allows current in one direction; resistance is very high in reverse
  • LDR: resistance decreases as light increases
  • Thermistor: resistance decreases as temperature increases
  • Mains electricity: 230V AC at 50Hz in the UK

Physics – Magnetism & Electromagnetism

  • Magnetic field lines go from North to South pole (outside the magnet)
  • Fleming's Left-Hand Rule: thumb = force (motion), index = field, middle = current
  • Motor effect: current-carrying wire in magnetic field experiences a force
  • Electromagnetic induction: moving a conductor in a field induces an EMF (generator)
  • Transformers: step voltage up/down using coil ratio: V₁/Vβ‚‚ = N₁/Nβ‚‚

Physics – Atomic & Nuclear Physics

  • Rutherford's gold foil experiment showed the atom is mostly empty with a dense positive nucleus
  • Alpha (Ξ±): 2 protons + 2 neutrons; stopped by paper; highly ionising
  • Beta (Ξ²): fast electron; stopped by thin aluminium; moderately ionising
  • Gamma (Ξ³): EM wave; stopped by thick lead; weakly ionising
  • Half-life: time for activity/mass to halve
  • Nuclear fission: large nucleus splits (e.g. U-235); releases energy in nuclear reactors
  • Nuclear fusion: two small nuclei combine (e.g. in the Sun); releases more energy than fission
Half-life Calculation After n half-lives, amount remaining = initial Γ— (Β½)ⁿ