Shahzad Ali

World & physics.

World & physics

What is chemistry?

Chemistry is about substances changing

Chemistry studies substances: what they are made of, how they behave and how they change. An iron bicycle left in damp air gives us a familiar example. Over time, its surface can develop rust.

Iron bicycle
develops
Rusty surface
The material at the surface changes when iron rusts.

Several ingredients meet

At the bicycle’s exposed surface, iron meets water and oxygen from the air. These substances can react together. Scratched paint exposes more iron, so that patch gives the reaction a place to begin.

Exposed iron
Water
Oxygen
Iron, water and oxygen meet at the scratched surface.

Atoms rearrange into new substances

During rusting, electrons are transferred and atoms become arranged in new compounds containing iron and oxygen. Rust has different characteristics from the original metal, including a crumbly structure that offers little protection underneath.

Iron surface
takes part in
Chemical reaction
produces
Rust compounds
The reaction produces substances with different behaviour.

Paint changes the conditions

A coat of paint acts as a barrier between the iron and its surroundings. Keeping water and oxygen away slows the reaction. This explains why protecting a scratch can help protect the bicycle.

Paint barrier
protects
Iron beneath
The barrier limits contact with the ingredients needed for rusting.

The same lens reaches into life

The rusting bicycle shows chemistry’s central idea: what meets, under which conditions, determines what can change. Inside living cells, carefully organised chemical reactions build molecules, release energy and carry signals. That study is biochemistry.

Rusting iron
Chemical reactions
Living cells
Chemistry explains reactions in both everyday materials and living systems.

Chemistry explains how atoms combine, separate and rearrange to make substances behave differently.

Ideas from OpenStax and the American Chemical Society · Introductory chemistry and food chemistry

Original plain-language explanation informed by the educational sources linked below.

A physical change can alter the arrangement or movement of molecules. Ice melting into liquid water is an example. A chemical reaction changes which substances are present by changing bonds between atoms.

Toast browning involves many reactions. A group called Maillard reactions includes interactions between sugars and amino acids. The resulting molecules contribute to colour and flavour.

Biochemistry follows chemical processes in living things. Materials chemistry helps explain substances used to build things, including the silicon inside a computer.

A dots-and-links picture gives a first view of atoms and bonds. More detailed models explain their shapes, electrical behaviour and reactions.

What is biology?

A seed becomes a plant

Biology is the study of living things and how they work. A bean seed provides a small example: under suitable conditions it takes in water, grows roots and eventually produces leaves.

Bean seed
grows into
Bean plant
A living organism develops by taking in materials and using energy.

Water starts the activity

A dry seed contains living tissue and stored nutrients. When it takes in water under suitable conditions, chemical activity increases. Its cells use stored resources to support the earliest growth.

Water
activates
Seed tissue
supports
First root
Stored resources support growth before the seedling can make much food.

Cells build more living tissue

The growing plant makes new cells and enlarges existing ones. Different cells take on different jobs. Roots absorb water and minerals, while leaves later capture light for photosynthesis.

Growing cells
Roots
Leaves
Specialised parts help the whole plant obtain what it needs.

The plant depends on its world

A plant grows differently when light, water or temperature changes. Insects may eat its leaves, and microbes may affect its roots. Understanding the plant also means understanding these relationships with its surroundings.

Light
Growing plant
Available water
A plant’s behaviour depends on conditions around it.

Living systems contain smaller systems

The bean plant connects several scales: chemical reactions help cells work; cells form roots and leaves; the whole plant interacts with its environment. Biology follows these connections across a living system.

Reactions
support
Cells
form
Plant
interacts with
Surroundings
Each scale contributes to what the plant can do.

Biology studies living systems, from cells maintaining themselves to organisms interacting with their surroundings.

Ideas from OpenStax and NIH · Biology, cells and the heart

Original plain-language explanation informed by the educational sources linked below.

In a human body, cells form tissues, tissues form organs, and organs work together in systems. A heart belongs to the system that circulates blood. This is one way to follow the connections between small parts and a whole living thing.

Some living things consist of one cell; others contain many cells. Biology also explores how populations change over generations and how living things interact in environments such as forests and oceans.

Biochemistry opens the molecules and reactions inside these living systems. Neuroscience studies the nervous system, including the brain. These subjects connect different levels of the same living world.

A human body is one example within biology. Different living things have different structures, needs and ways of life.

How is everything connected?

A bicycle is a system

A system is a group of parts that affect one another. A bicycle makes this easy to see: your legs, the pedals, the chain and the wheel work together to move you down the road.

Back wheelPedalFront wheelPedal → chain → back wheel
The links carry movement from your legs to the wheel.

Your foot starts the movement

Your foot pushes a pedal. The pedal turns a toothed wheel at the front of the bicycle. That wheel pulls the chain, so movement begins to travel through the connected parts.

Back wheelPedalFront wheelPedal → chain → back wheel
One action travels through three connected parts.

The wheel receives the push

The moving chain turns the gear attached to the back wheel. The tyre pushes against the road, and the road pushes the bicycle forwards. Each connection helps pass the effect along.

Back wheelPedalFront wheelPedal → chain → back wheel
The chain, wheel and road together turn your effort into travel.

A broken link changes everything

Now imagine the chain slips off. Your legs can still move the pedals, but that movement no longer reaches the back wheel through the chain. The bicycle has the same parts, with a connection missing.

Back wheelPedalFront wheelThe chain has slipped off
A failed connection interrupts the useful movement.

Connections explain the whole

A bicycle works because its parts interact in a useful arrangement. Bodies, businesses and economies can also be understood by tracing which parts affect others and how a changed connection alters the whole system.

Back wheelPedalFront wheelThe connections turn effort into travel
Understanding the bicycle means following how effort becomes movement.

A system is a set of connected parts. A change in one part can travel through the rest.

A connected picture helps you ask questions across subjects. The detailed explanation of a political decision still needs people, institutions, evidence and circumstances. Several kinds of explanation can contribute to one event.

This is a learning map. Its links include physical mechanisms, social arrangements and ways of explaining. Their meanings are labelled separately.

What is everyday stuff made of?

The cup is made of matter

Matter is the material that makes up things such as a cup, water and air. A cup feels solid because enormous numbers of tiny constituents hold together in a stable structure.

CupSolid material
WaterLiquid material
AirGaseous material
These everyday materials have different arrangements and behaviour.

Water fills the cup

Water is made of molecules. A molecule is a small group of atoms joined together. Each water molecule contains two hydrogen atoms and one oxygen atom, joined in a particular arrangement.

Three atomsTwo H, one O
join into
Water moleculeH₂O
many make
Water in cupHuge numbers of molecules
Many water molecules together make the liquid you can see.

Warm water moves faster inside

When the water is heated, its molecules move more vigorously on average. They are already moving before heating. The added energy changes their motion, even though the individual molecules remain far too small to see.

Heat enters
increases
Faster movement
appears as
Warmer water
A change at the tiny scale appears as warmer water.

Some water becomes vapour

Some molecules can escape from the liquid surface into the air. Heating can increase evaporation. The water changes its physical arrangement, while each escaping molecule still contains hydrogen and oxygen joined together.

Liquid water
releases
Molecules escape
spreads as
Water vapour
Molecules leave the surface and spread through the air.

Tiny behaviour becomes visible

The cup connects scales: atoms join into molecules, molecules move together, and you experience water that flows, warms and evaporates. Chemistry investigates the substances and their changes; physics helps explain the forces and energy involved.

Atoms
form
Molecules
together make
A cup of water
The visible cupful emerges from enormous numbers of tiny interactions.

Matter is the material in physical objects; its tiny constituents help explain its visible behaviour.

An atom contains a small nucleus and electrons. At this scale, everyday pictures of solid balls are limited. The atom lessons open the next layer.

Physics also studies light, fields, space and other phenomena. A map of everyday material is one starting point within that larger subject.

The building-piece picture is a first model of everyday matter. More detailed models are needed at atomic and smaller scales.

What does energy do?

Energy makes change possible

Energy is a quantity that helps us track the ability to cause physical change. When sunlight warms a pavement or your legs move a bicycle, energy is being transferred and transformed.

Sunlight
warms
Warm pavement
Energy carried by light can warm a surface.

A leaf captures sunlight

A plant absorbs some sunlight. Through photosynthesis, it uses that energy to help make sugars from water and carbon dioxide. Energy becomes stored in the chemical arrangements of the products.

Sunlight
absorbed by
Plant
makes
Stored sugars
The plant converts some incoming light energy into chemical energy.

Food carries that energy onwards

Imagine eating bread made from the plant’s grain. Digestion breaks food into smaller molecules. Your cells use chemical reactions involving those molecules to supply energy for movement, repair and many other activities.

Bread
fuels
Body cells
power
Moving muscles
Energy stored through plant growth helps support your movement.

Your movement also produces heat

As your muscles work, some energy supports movement and some spreads as heat. Your body warms its surroundings. A machine follows the same broad accounting: useful output and energy spreading into the environment.

Working muscles
Movement
Heat spreads
Energy is transferred into movement and the surroundings.

One journey crosses many subjects

Sunlight, plant chemistry, food production and your body belong to one connected story. Economics then asks how people organise the work and exchange the food. Energy provides a physical foundation for that activity.

Sunlight
supports
Crops
supply
Food economy
supports
Human activity
The same energy story connects physics, biology and everyday economic life.

Energy lets physical changes happen. Following its transfers connects sunlight, food, bodies and machines.

Energy is a measurable quantity that takes different forms. Tracking transfers gives a useful accounting method across electrical, chemical and mechanical changes.

In a food chain, energy passes through living things and is increasingly transferred as heat. Matter such as carbon and water also moves through the environment. These are related flows with different accounting.

This overview follows familiar energy transfers. The detailed mechanism depends on the system being studied.

How do tiny parts make a living body?

A living body keeps itself going

Living things carry out organised processes that help them persist, grow and reproduce. A person offers a familiar example: breathing, eating and circulation continually support the cells that make up the body.

Breathing
Eating
Living body
Life depends on continuing exchanges with the surroundings.

Cells need incoming supplies

After a meal, digested nutrients enter the bloodstream. Breathing brings oxygen into the lungs. Circulation carries these supplies towards cells throughout the body, where they support many chemical processes.

Nutrients
enter
Bloodstream
supplies
Body cells
Circulation connects incoming resources to the cells that use them.

Cells spend energy on upkeep

Cells use energy to maintain boundaries, build molecules, move substances and repair damage. This continuing activity helps preserve a living arrangement despite constant wear and changing conditions around the body.

Cell
releases
Chemical energy
supports
Ongoing upkeep
The cell uses chemical energy to maintain its organisation.

Waste and heat leave the body

The body also releases carbon dioxide, other waste products and heat. Life involves a continuing flow through the system: resources enter, reactions occur, and products leave. Blocking a vital flow can disrupt the whole body.

Food and oxygen
supply
Working body
releases
Waste and heat
A living body remains connected to its environment.

Life links chemistry to behaviour

Those maintained cells form organs, muscles and the brain. Their organised activity enables movement, perception and choices. A human conversation rests on living processes that keep the speakers’ bodies functioning moment by moment.

Chemistry
supports
Living cells
form
Brain and body
enable
Conversation
A social activity depends on many layers of living organisation.

Living things maintain and reproduce organised systems by exchanging matter and energy with their surroundings.

Organisation matters. Describing a list of molecules and describing how a cell maintains itself answer different parts of the same biological question.

The development and evolution of living systems are large subjects of their own. This card follows how a living body is organised today.

This picture describes cells and bodies at a broad level. The origin of life and the full details of each cell process require further explanations.

How can a system adjust itself?

A result comes back into the system

Feedback means that the result of an action affects the system’s next action. A room thermostat provides a simple example: it measures temperature and uses that information to control the heating.

Thermostat
controls
Heating
changes
Room temperature

Room temperature temperature is measured → Thermostat

The thermostat controls heating, and the room’s temperature returns as information.

The room is too cold

Suppose the thermostat is set to 20°C and measures 17°C. It switches the heating on. The measured temperature tells the controller that the room needs more warmth to reach its setting.

Room: 17°C
measured by
Target: 20°C
switches on
Heating on
The gap between the reading and the setting starts the heating.

The heating changes the reading

As the room warms, the thermostat measures a higher temperature. The action has changed the very thing being measured. That returning information is the feedback connection in this example.

Heating on
warms
Room warms
changes
New reading
Heat changes the room, and the changed room supplies the next reading.

Reaching the target changes the action

When the room reaches the thermostat’s switching threshold, the heating turns off. As warmth later escapes, the reading falls and heating can start again. This repeated correction keeps temperature within a range.

Target reached
detected by
Controller responds
switches
Heating off
The response reduces the original temperature gap.

Feedback can stabilise or amplify

The thermostat opposes a temperature change, which helps stabilise the room. Other feedback can amplify change: a rumour spreads, attracts attention and is shared again. The effect depends on how the returning result changes the next action.

Heat the room
Read temperature
Adjust heating

Heat the room changes → Read temperature

Read temperature guides → Adjust heating

Adjust heating changes next heating → Heat the room

This loop repeatedly checks the result and changes the action.

Feedback happens when an action’s result returns to influence what happens next.

Feedback that reduces a change can help keep a condition within a workable range. Delays and limits affect how smoothly the adjustment happens.

The same pattern can help organise questions about bodies, machines and organisations. In each case, identify what is measured, who or what responds, and how the response affects the next observation.

A thermostat and a person implement feedback in different ways. The shared pattern is useful when the parts and limits are specified.

Did we invent the world or its descriptions?

A map is a model

A model is a simplified representation used to understand something. A street map is one: it represents a city while leaving out most of what you would experience by walking through it.

Real city
represented by
Street map
The map keeps selected features of the city.

The map keeps useful relationships

Suppose you need to reach a station. A map shows which roads connect, where you are and where the station is. Those relationships matter for choosing a route through the city.

You are here
follow
Connecting roads
lead to
Station
The simplified picture keeps the connections needed for the journey.

Some details disappear

The same map may leave out steep hills, building colours or pavement closures. Leaving things out makes the map easier to read, but each omission limits which decisions the map can reliably support.

Route shown
Hill omitted
Closure omitted
A useful simplification can still miss something important for this trip.

A different job needs a different map

A cyclist may need hills and cycle lanes. A train passenger needs stations and line changes. Both maps can describe the same city while highlighting different information for different purposes.

Cycling mapHills and lanes
Rail mapStations and changes
The purpose determines which details deserve space.

The model guides a checkable decision

You choose a route, try it and compare the journey with the map. A mismatch reveals something to update. Scientific models and mental models use this same broad habit: simplify, apply, observe and revise.

Use the map
guides
Make the trip
informs
Update the picture
Experience can reveal where the model needs revision.

A model leaves out detail to make a particular relationship easier to understand or predict.

Our choice of words and diagrams shapes how we organise questions. Measurement and comparison help distinguish explanations with different practical consequences.

Philosophers debate whether successful scientific theories describe a world independent of minds, organise experiences, or do some combination of these. The debates involve further arguments.

The success of a useful model constrains some claims. The complete metaphysical interpretation remains a separate philosophical question.

How can something we invent shape our lives?

A queue depends on a shared rule

A social rule is an expectation about how people should behave together. At a shop counter, people commonly join behind those already waiting. That shared expectation makes service more predictable.

First customer
waits before
Next customer
approach
Shop counter
Customers coordinate their order using a shared expectation.

New arrivals follow the pattern

A new customer sees the line and joins at the back. Nobody needs to redesign the queue each time. Observing others and expecting the same rule helps the arrangement continue.

New arrival
joins
Existing queue
moves towards
Counter
A newcomer can coordinate by recognising the rule already in use.

The rule creates expectations

People in the queue expect their turn to come. If someone steps straight to the front, others may object. Their response helps maintain the rule and shows that the order carries social meaning.

Queue jumper
affects
Waiting people
respond with
Objection
Breaking the expectation prompts a response from the group.

Groups can change their rules

The shop may introduce appointments or priority service for particular needs. The arrangement changes when people understand and follow the new rule. Rules can be informal habits or written, enforced procedures.

Shop changes system
introduces
Appointment slots
guide
Customers adapt
A different shared procedure changes how the same service is organised.

Shared rules scale into institutions

Queues, money, contracts and elections all depend on coordinated expectations, although their rules differ greatly. They shape real behaviour and real outcomes. Understanding the physical world includes understanding the institutions people build together.

People agree
establish
Shared rules
organise
Coordinated activity
A social arrangement becomes effective through people acting within it.

Shared rules let people coordinate, and their effects depend on understanding, acceptance and enforcement.

Social institutions combine roles, expectations, practices and power. An individual’s private opinion may have little effect on a rule supported by many people and organisations.

Examine one institution by asking who participates, who benefits, who bears costs and how a change could happen. Those questions connect economics, politics, psychology and history.

Philosophers and social scientists disagree about the best account of social reality. Specific institutions can be studied through their practices and consequences.

What do we mean by real?

You experience a world through your mind

You see a cup on a table. Light reaches your eyes, and your brain processes the signals. The cup as experienced includes this biological work, which raises a philosophical question about the relation between experience and reality.

Cup
reflects light to
Eyes
send signals to
Experience
An everyday experience involves a thing, incoming signals and brain activity.

The view changes with the conditions

Move the cup into dim light and its colour may look different. Your experience changes with lighting, viewpoint and your visual system. These factors matter when interpreting what the cup looks like.

Cup in daylight
Cup in dim light
The same object can produce different experiences under different conditions.

Other observations help us compare

Another person looks at the cup. A camera records it. A ruler measures its width. Comparing methods helps separate features that stay stable from appearances that depend strongly on the observer or conditions.

Another observer
Camera
Measurement
Several observations can constrain an explanation of the same object.

Philosophers interpret this relationship differently

Realists commonly hold that a world exists independently of our experience. Idealist traditions give mind a more fundamental role. The fact that perception involves processing leaves room for argument about these broader philosophical claims.

Mind-independent world
Mind is fundamental
These are competing interpretations of the relation between mind and world.

The whole picture includes the observer

Physics studies the cup and light. Biology studies eyes and brains. Psychology studies perception and interpretation. Philosophy examines what these findings allow us to claim. Connecting them helps keep observation, explanation and belief distinct.

Cup and light
interact with
Eyes and brain
support
Perception
raises
Interpretation
Several subjects examine different parts of one experience.

Our experience is shaped by the mind; understanding reality also requires comparing observations and testing explanations.

Calling a category human-made raises questions about how people establish it. Whether everything that exists depends on mind is a further claim that different philosophies debate.

You can compare views by stating what each claims, what would count as evidence, and which questions it leaves open. Some disputes are about experience, some about measurement, and some about the meaning of our concepts.

This card organises an enquiry. It leaves competing philosophical accounts open to examination.