π¬ Year 7 Science
Biology, Chemistry, and Physics β exploring the fundamental principles of the natural world.
Biology β Cells & Life Processes
The Seven Life Processes (MRS GREN)
- Movement β ability to move
- Respiration β releasing energy from food
- Sensitivity β responding to the environment (stimuli)
- Growth β increasing in size and complexity
- Reproduction β producing offspring
- Excretion β removing waste products
- Nutrition β taking in food/energy
Animal Cell vs Plant Cell
- Both have: cell membrane, nucleus, cytoplasm, ribosomes, mitochondria
- Only plant cells have: cell wall (cellulose), chloroplasts, large permanent vacuole
- Cell membrane: controls what enters and leaves the cell
- Nucleus: contains DNA; controls the cell's activities
- Cytoplasm: jelly-like fluid where chemical reactions occur
- Mitochondria: site of aerobic respiration; releases energy
- Chloroplasts: contain chlorophyll; where photosynthesis occurs (plant only)
- Cell wall: made of cellulose; supports and strengthens the plant cell
- Vacuole: stores cell sap; keeps cells firm (turgid)
Specialised Cells
- Red blood cells: no nucleus (more room for haemoglobin); biconcave shape (large surface area)
- Sperm cell: long tail (flagellum) for swimming; lots of mitochondria for energy
- Egg cell (ovum): large with nutrients to feed the developing embryo
- Root hair cell: long hair-like extension to increase surface area for absorbing water
- Nerve cell (neurone): very long with branches to carry signals across the body
- Muscle cell: contains protein fibres that can contract
From Cells to Organisms
- Cell β Tissue β Organ β Organ system β Organism
- e.g. Muscle cells β Muscle tissue β Heart β Circulatory system β Human body
Microscopes
- Light microscopes magnify up to ~1000Γ; used in school labs
- Electron microscopes magnify up to 1,000,000Γ; reveal sub-cellular structures
- Total magnification = eyepiece lens Γ objective lens (e.g. 10Γ Γ 40Γ = 400Γ magnification)
Biology β Reproduction
Sexual vs Asexual Reproduction
- Sexual reproduction: requires two parents; produces genetically unique offspring; involves gametes (sex cells)
- Asexual reproduction: one parent; offspring are genetically identical (clones); examples: bacteria dividing, runners in strawberries, bulbs
Human Reproductive System
- Gametes: sperm (male) and egg/ovum (female); each contain half the normal number of chromosomes
- Fertilisation: sperm and egg fuse β forms a zygote with a full set of chromosomes
- Gestation: 9 months (approximately 40 weeks) in humans
- Placenta: supplies the foetus with nutrients and oxygen from the mother's blood
- Umbilical cord: connects foetus to placenta
Puberty
- Puberty is triggered by hormones (oestrogen in females, testosterone in males)
- In females: ovulation begins, menstrual cycle starts, breasts develop, growth spurt, body hair
- In males: sperm production begins, voice breaks, muscles develop, body hair
- Menstrual cycle: approximately 28 days; ovulation occurs around day 14
Plant Reproduction
- Parts of a flower: stamen (anther + filament) = male; carpel (stigma + style + ovary) = female; petals; sepals
- Pollination: transfer of pollen from anther to stigma β by insects (bright colours/scent) or wind (light pollen/feathery stigma)
- Fertilisation: pollen tube grows to ovary; male gamete fuses with ovule β seed
- Seed dispersal: wind, water, animals (eaten or carried), explosion
- Germination: needs warmth, water, and oxygen (not light at first)
Biology β Ecosystems & Food Chains
Key Vocabulary
- Ecosystem: all living things in an area plus the non-living environment
- Habitat: the place where an organism lives
- Population: all individuals of one species in an area
- Community: all populations of different species living in the same area
- Producer: a plant that makes its own food via photosynthesis
- Consumer: an organism that eats other organisms
- Herbivore: eats only plants; Carnivore: eats only animals; Omnivore: eats both
- Predator: hunts and eats prey
- Decomposer: breaks down dead material (e.g. bacteria, fungi)
Food Chains & Food Webs
- Food chain shows the direction of energy flow: Producer β Primary consumer β Secondary consumer β Tertiary consumer
- Arrows show where energy goes (not what eats what!): grass β rabbit β fox
- Food web: several interconnected food chains in an ecosystem
- If one species is removed from a food web, it can affect all others (predatorβprey relationships)
Adaptation
- Organisms have features (adaptations) that help them survive in their habitat
- Polar bear adaptations: white fur (camouflage), thick fur and fat layer (insulation), large paws (spread weight on ice)
- Cactus adaptations: thick waxy stem (stores water), spines (protection, less surface area), deep roots (reach water)
Photosynthesis
Word Equation
Carbon dioxide + Water β Glucose + Oxygen
(using light energy, absorbed by chlorophyll)
- Chlorophyll in chloroplasts absorbs light (mostly red and blue wavelengths)
- Glucose is used for: respiration, growth, making starch for storage, making cellulose
- Factors that increase the rate: more light, higher COβ concentration, higher temperature (up to a point)
Chemistry β Particles & States of Matter
The Three States of Matter
- Solid: particles close together in fixed positions, vibrate; definite shape and volume; cannot be compressed
- Liquid: particles close together but can move and slide past each other; definite volume but no fixed shape; flows
- Gas: particles far apart, moving randomly and fast; no fixed shape or volume; easily compressed
Changes of State
- Melting: solid β liquid (heating)
- Freezing: liquid β solid (cooling)
- Evaporation/Boiling: liquid β gas (heating)
- Condensation: gas β liquid (cooling)
- Sublimation: solid β gas directly (e.g. dry ice)
- Changes of state are physical changes β the substance is not altered, just rearranged
Melting Points and Boiling Points
- Melting point: temperature at which a substance changes from solid to liquid
- Boiling point: temperature at which a substance changes from liquid to gas throughout
- Water: melts at 0Β°C, boils at 100Β°C (at standard pressure)
- Pure substances have sharp melting/boiling points; mixtures melt/boil over a range of temperatures
Diffusion
- Movement of particles from an area of high concentration to an area of low concentration
- Occurs in gases and liquids (not solids β particles can't move freely)
- Increases with: higher temperature, smaller particles
Chemistry β Elements, Compounds & Mixtures
Elements
- An element is a substance made of only one type of atom; cannot be broken down further by chemical means
- 118 known elements; each has a chemical symbol (1β2 letters)
- e.g. O = oxygen, C = carbon, Na = sodium (from Latin "Natrium"), Fe = iron (from "Ferrum")
Compounds
- A compound is a substance made of two or more different elements chemically joined
- Properties are different from the elements it contains
- e.g. HβO (water) = hydrogen + oxygen bonded together
- NaCl (table salt) = sodium + chlorine bonded together
- Compounds can only be separated by chemical reactions
Mixtures
- A mixture contains two or more substances that are NOT chemically joined
- The substances keep their own properties and can be separated by physical means
- Examples: air (gas mixture), seawater (salt dissolved in water), sand and water
Separating Mixtures
- Filtration: separates an insoluble solid from a liquid (e.g. sand from water)
- Evaporation: removes a liquid from a dissolved solid (e.g. getting salt from saltwater)
- Distillation: separates liquids with different boiling points; the liquid evaporates, cools, and condenses
- Chromatography: separates different coloured dyes (pigments) in a mixture (e.g. inks in felt-tip pens)
- Magnetic separation: uses a magnet to remove magnetic materials (e.g. iron filings from sand)
Chemistry β The Periodic Table
- Arranged by increasing atomic number (number of protons)
- Period: horizontal row β elements have the same number of electron shells
- Group: vertical column β elements have the same number of outer electrons and similar properties
- Metals are on the left and middle; non-metals are on the right; metalloids on the dividing line
- Over 75% of elements are metals
Key Groups
- Group 1 (Alkali metals): Li, Na, K β very reactive, soft, shiny, react violently with water; reactivity increases down the group
- Group 7 (Halogens): F, Cl, Br, I β non-metals, diatomic molecules (Clβ, Brβ); reactivity decreases down the group
- Group 0 (Noble gases): He, Ne, Ar β very unreactive because they have a full outer shell
- Transition metals: middle block β denser, harder, higher melting points, less reactive than Group 1
Atomic Structure
- Protons (positive charge) and neutrons (no charge) are in the nucleus
- Electrons (negative charge) orbit the nucleus in shells
- Shell capacities: 1st = 2, 2nd = 8, 3rd = 8
- e.g. Sodium (Na): 11 protons, 11 electrons, configuration = 2, 8, 1
Chemistry β Chemical Reactions
Signs of a Chemical Reaction
- Production of a gas (effervescence/bubbling)
- Formation of a precipitate (solid forms in a liquid)
- Change in colour
- Temperature change (exothermic = heat released; endothermic = heat absorbed)
- Irreversible change (often hard to reverse)
Word Equations
- Reactants β Products
- e.g. Magnesium + Oxygen β Magnesium oxide
- e.g. Hydrochloric acid + Sodium hydroxide β Sodium chloride + Water
Acids and Alkalis
- pH scale: 0β14. Below 7 = acid; 7 = neutral; above 7 = alkali
- Indicators: litmus (red in acid, blue in alkali), universal indicator (range of colours)
- Neutralisation: acid + alkali β salt + water
- Common acids: hydrochloric acid (HCl), sulfuric acid (HβSOβ), nitric acid (HNOβ)
- Common alkalis: sodium hydroxide (NaOH), calcium hydroxide, ammonia solution
Combustion
- Combustion = burning; requires: fuel, oxygen, and heat (fire triangle)
- Complete combustion: fuel + oxygen β carbon dioxide + water (blue flame)
- Incomplete combustion: not enough oxygen β carbon monoxide (CO) produced (poisonous) + carbon (soot)
- Hydrocarbons burn in oxygen: e.g. methane + oxygen β carbon dioxide + water
Physics β Forces & Motion
Types of Force
- Contact forces: friction, air resistance, tension, normal force, upthrust
- Non-contact forces: gravity, magnetism, electrostatic force
- Forces are measured in Newtons (N)
- Forces have both size and direction β they are vectors
Effects of Forces
- Forces can: change speed, change direction, change shape, start or stop movement
- Balanced forces: forces are equal in opposite directions β object stays still or moves at constant speed
- Unbalanced forces: a net (resultant) force exists β the object accelerates in the direction of the larger force
Gravity and Weight
- Gravity is a non-contact force that attracts masses towards each other
- On Earth, gravity pulls objects towards the centre of Earth
- Mass: the amount of matter in an object (kg) β stays the same everywhere
- Weight: the gravitational force acting on a mass (N) β changes on different planets
Weight Formula
Weight (N) = mass (kg) Γ gravitational field strength (N/kg)
On Earth: g = 10 N/kg | On Moon: g β 1.6 N/kg
Friction
- Friction opposes motion between surfaces
- Useful friction: brakes, tyres gripping road, walking (feet don't slip)
- Unhelpful friction: wears down machine parts, wastes energy as heat
- Reduce friction: lubricants (oil, grease), smooth surfaces, ball bearings, streamlining
Speed
Speed Formula
Speed (m/s) = Distance (m) Γ· Time (s)
Or: Distance = Speed Γ Time | Time = Distance Γ· Speed
- Average speed: total distance Γ· total time (used when speed varies during journey)
- Distance-time graph: gradient = speed. Horizontal line = stationary. Steeper gradient = faster
Physics β Energy
Stores of Energy
- Kinetic: energy of movement (moving objects)
- Gravitational potential: energy due to height (objects raised above ground)
- Elastic potential: stored in stretched or compressed objects (springs, elastic bands)
- Thermal: energy stored in the temperature of an object
- Chemical: stored in food, fuel, batteries
- Magnetic: energy in a magnetic field
- Electrostatic: energy in separated electric charges
- Nuclear: energy stored in the nucleus of atoms
Energy Transfers
- Energy cannot be created or destroyed β only transferred between stores (conservation of energy)
- Methods of transfer: mechanical (forces), electrical (current), radiation (waves), heating
- e.g. A battery torch: Chemical β Electrical β Light + Thermal
Renewable & Non-Renewable Energy
- Non-renewable: fossil fuels (coal, oil, natural gas), nuclear β will run out; release COβ (except nuclear)
- Renewable: solar, wind, hydroelectric, tidal, geothermal, biomass β will not run out; generally lower carbon
- Fossil fuels formed from decayed organisms over millions of years
- Nuclear: uses uranium; produces radioactive waste; no COβ during operation but waste disposal is an issue
Physics β Light & Sound
Light
- Light is a transverse wave that can travel through a vacuum (no medium needed)
- Light travels at approximately 300,000,000 m/s (3Γ10βΈ m/s) in a vacuum
- Luminous objects produce their own light (sun, light bulb, candle)
- Non-luminous objects reflect light (moon, mirror, this page)
- Reflection: angle of incidence = angle of reflection (measured from the normal)
- Refraction: light bends when it passes from one medium to another (e.g. air to glass) because its speed changes
- Dispersion: white light splits into a spectrum (ROY G BIV) when passed through a prism
- Colour: objects appear a colour because they reflect that wavelength and absorb others
Sound
- Sound is a longitudinal wave β particles vibrate in the same direction as the wave travels
- Sound needs a medium (cannot travel through a vacuum)
- Sound travels faster in solids > liquids > gases (particles closer together)
- Speed of sound in air: approximately 340 m/s
- Amplitude: the height of the wave β controls volume (loudness). Measured in decibels (dB)
- Frequency: the number of waves per second β controls pitch. Measured in Hertz (Hz)
- Human hearing range: approximately 20 Hz to 20,000 Hz
- Ultrasound (>20,000 Hz): used in medical imaging and by bats for echolocation