The Building Blocks Physics & Chemistry
Discover the immutable constraints of the universe. This course explores the engine of energy, the bricks of matter, and the invisible forces that shape our existence — from atoms to light, from Newton to the stars.
What is this course?
The Building Blocks is a complete introductory physics and chemistry curriculum for young learners. It reveals the hidden rules that govern everything — why you can't get energy for free, what atoms really are, and how invisible forces move the universe. Every unit pairs a memorable story with the real science behind it.
Energy is never free
Learners discover the universe's strict budget: energy is conserved, entropy always wins, and heat is the tax on everything. No free lunch — and now they'll know why.
Atoms as cosmic Legos
Zoom into the empty cathedral of the atom, learn how chemical bonding glues matter together, and trace your own atoms back to stellar kitchens and golden explosions.
Newton's invisible rules
Three simple laws explain why balls roll, heads snap back, and rockets push forward. Students learn inertia, F=ma, and action-reaction — then see them everywhere.
Invisible hands
Gravity, magnetism and electricity move the world without touching it. From Galileo's tower to maglev trains, learners map the forces that shape our planet.
Matter, waves & light
Why is a rock hard and water wet? Why is the sky blue? Students explore states of matter, chemical reactions, sound waves and the full spectrum of light.
AI-guided mastery
An adaptive AI tutor narrates each unit, asks questions, and recycles wrong answers with spaced repetition until concepts truly stick.
The curriculum, unit by unit
27 units · 73 lessons. Click any unit to expand its full description and the lessons it contains. Use the search box above to filter units, or jump straight to a chapter.
Energy: The Universe's Strict Budget
The course opens with the most powerful laws in physics. Children learn that energy can never be created or destroyed — only transformed — and that every transformation pays a tax in heat and disorder.
- Explain the First Law of Thermodynamics: energy cannot be created or destroyed, only transformed
- Understand entropy — why eggs break but never un-break, and why rooms get messy by themselves
- Describe heat as the unavoidable tax on every energy transfer, and friction as its collector
- Audit real-world energy flows like an energy accountant, finding where the 'missing money' goes
Unit 1
No Free Lunch: Conservation of Energy
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If you tried to build a machine that runs forever without fuel, you would fail. Not because you are not smart, but because the universe has a very strict budget. In this unit, we explore the First Law of Thermodynamics, which is just a fancy way of saying: 'There is no free lunch.' We will see that energy—the currency of reality—never disappears; it just changes its outfit. This is the rule that governs everything from a burning star to the sandwich you ate for lunch.
Unit 2
The Arrow of Time: Entropy
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Have you ever wondered why you can break an egg, but you can never un-break it? Or why your room gets messy by itself, but never cleans itself? This is not just bad luck. It is the most powerful law in the universe: The Second Law of Thermodynamics. In this unit, we explore 'Entropy,' the measure of disorder. We will see why time only moves in one direction and why the universe prefers chaos over order.
Unit 3
The Furnace: Heat
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If energy is the currency of the universe, heat is the tax. Every time you do anything—move a muscle, drive a car, or even think a thought—you pay a fee in the form of heat. In this unit, we look at why engines get hot, why friction is a thief, and why heat is considered the 'graveyard' of energy: the place where useful motion goes to retire.
Unit 4
Maxwell's Demon: Can We Cheat Entropy?
8 questions
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We have learned that entropy (disorder) always increases. But in 1867, a brilliant physicist named James Clerk Maxwell came up with a way to cheat. He imagined a tiny creature—a demon—who could sort atoms without doing any heavy lifting. If the demon worked, he could make heat flow from cold to hot for free, breaking the laws of the universe. In this unit, we explore this famous paradox and discover the surprising reason why the demon fails: the cost of information.
Unit 5
The Perpetual Motion Machine: The History of Impossible Dreams
8 questions
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For as long as humans have built machines, we have dreamed of the 'Forever Engine'—a device that runs without fuel, forever. Kings have paid fortunes for them. Inventors have spent their lives building them. But every single one has stopped. In this unit, we look at the history of the Perpetual Motion Machine. We will examine why our brains so desperately want them to be true, and the simple, stubborn laws of physics that ensure they will always fail.
Unit 6
Practice: The Exchange Rate
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Welcome to the energy gym. You now know that energy never disappears, it just swaps costumes. In this practice unit, we are going to pause the universe in different scenarios and identify exactly what 'costume' energy is wearing. Is it waiting (Potential)? Or is it moving (Kinetic)? This skill—seeing the hidden energy states—is the first step to understanding how the physical world works.
Unit 7
Practice: The Heat Audit
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You are now an energy accountant. Your job is to find the 'missing money' in the universe's budget. When you put 100 units of fuel into a car, you only get about 20 units of movement. Did the rest vanish? No. In this practice unit, we will track down the thieves—Heat, Sound, and Vibration—that steal useful energy from our machines. We will learn to look at a system and spot exactly where the energy is leaking out.
Atoms: The Cosmic Legos
What is everything made of? Children zoom a billion times closer to meet the atom — its nucleus, its electron clouds, the empty space between — and learn what makes atoms stick together to build the world.
- Describe atoms as the building blocks of matter and their structure: nucleus, protons, neutrons and electrons
- Explain ionic and covalent bonding — why atoms are social creatures that trade and share electrons
- Trace the cosmic origins of the atoms in your own hand, from stellar kitchens to supernova explosions
- Read the periodic table like a GPS and decode chemical formulas like H₂O and CO₂
Unit 1
The Legos: Atoms
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Look at your hand. It looks solid, like a single piece of skin. But if you could zoom in a billion times, you would see that you are actually a cloud of tiny, vibrating spheres. These are atoms—the Lego bricks of the universe. Everything you touch, breathe, or eat is built from these same few types of bricks, just arranged in different patterns. In this unit, we explore the structure of the atom and the strange reality that solid things are actually mostly empty space.
Unit 2
The Glue: Chemical Bonding
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If atoms are Legos, what makes them stick together? Why don't they just fall apart into a pile of dust? The answer is Bonding. Atoms are social creatures, but they are very specific about who they hang out with. They are constantly trading and sharing electrons to feel 'complete.' In this unit, we will look at the invisible glue that holds the universe together, and the two main ways atoms connect: the greedy theft (Ionic) and the friendly handshake (Covalent).
Unit 3
We Are Stardust: Cosmic Origins
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Look at your hand. It looks new. But the atoms inside it are over 13 billion years old. You are not just living in the universe; you are made of it. In this unit, we discover the cosmic recipe for a human being. We will learn how the universe started with only the simplest gas, and how the iron in your blood and the calcium in your bones were literally forged in the hearts of dying stars.
Unit 4
The Alchemist's Dream: Turning Lead into Gold
8 questions
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For thousands of years, the smartest people on Earth were obsessed with a single impossible task: turning boring, cheap lead into shiny, expensive gold. They called this 'Alchemy.' They believed that if they found the right magical powder—the Philosopher's Stone—they could cheat nature. In this unit, we explore why they failed for centuries, and how modern science finally made their dream come true (with a very expensive catch).
Unit 5
Water is Weird: The Molecule That Saved Life
8 questions
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Water is the most common substance on Earth, but it is also the strangest. It breaks almost every rule in the chemistry textbook. If water behaved 'normally' like other liquids, life as we know it would not exist. In this unit, we explore the strange anomaly of water density—why ice floats instead of sinks—and how this one tiny molecular quirk acts as a shield for every fish in the ocean.
Unit 6
Practice: The Periodic Map
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You wouldn't drive a car without a GPS. In chemistry, the GPS is the Periodic Table. It looks like a colorful wall chart, but it is actually a cheat sheet for the entire universe. Every single type of atom that exists is listed here, ordered by size. In this practice unit, we will learn how to read this map so you can instantly find an atom's name, its symbol, and its 'ID number' (Protons).
Unit 7
Practice: The Molecule Maker
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Chemistry is really just cooking with atoms. And like any good cook, you need to know how to read the recipe. Chemical formulas—like H2O or CO2—are just tiny grocery lists. They tell you exactly which ingredients to grab and how many of each you need. In this practice unit, we will learn to decode these lists so you can look at a strange string of letters and see the molecule hidden inside.
Forces & Motion: Newton's Rules
Why does a ball keep rolling? Why does your head snap back when a car accelerates? Students master Newton's three laws and meet the invisible hands — gravity, magnetism and electricity — that move the world without touching it.
- Apply Newton's three laws: inertia, F = ma, and action-reaction
- Explain how gravity and magnetism act as field forces across empty space
- Describe electricity as an electron highway and read circuit diagrams like a plumber
- Debunk the 'heavy things fall faster' myth using Galileo's famous experiment
Unit 1
The Push: Newton's Laws of Motion
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Why does a ball keep rolling until it hits something? Why does your head snap back when a car accelerates? The answer lies in three simple rules written by Isaac Newton over 300 years ago. These rules are the 'source code' for movement. Whether you are throwing a rock or launching a rocket to Mars, you are obeying the Laws of Motion. In this unit, we will learn why objects are stubborn, why heavy things are hard to push, and why you cannot touch the world without it touching you back.
Unit 2
The Invisible Hands: Gravity & Magnetism
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If you want to move a chair, you have to touch it. But nature has a way to move things without touching them at all. We call these 'Field Forces,' but you can think of them as invisible hands reaching across space. In this unit, we explore the two most famous ghost forces: Gravity (the force that holds you down) and Magnetism (the force that guides your compass). We will see how they are similar, how they differ, and why one of them is actually protecting your life right now.
Unit 3
The Spark: Electricity
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For most of human history, the only time we saw electricity was when the sky tore open in a thunderstorm. It was terrifying and useless. Today, it runs your heart monitor, your toaster, and the device you are reading this on. But what is it? It isn't magic. In this unit, we demystify 'The Spark.' We will learn that electricity is simply a river of electrons flowing through a metal wire, and we will master the three rules that control that river: Voltage, Current, and Resistance.
Unit 4
Galileo's Tower: The Gravity Experiment
8 questions
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For almost 2,000 years, everyone believed a simple lie: 'Heavy things fall faster than light things.' It makes sense, right? A rock falls faster than a feather. But in 1589, a rebel mathematician named Galileo Galilei decided to stop guessing and start testing. In this unit, we climb the Leaning Tower of Pisa to watch the most famous experiment in history, and we learn why your intuition about gravity is wrong.
Unit 5
The Maglev Train: Riding the Magnetic Wave
8 questions
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Trains have been around for 200 years, but they all have the same problem: wheels. Wheels are heavy, loud, and they grind against the track. This grinding is friction, and it is the enemy of speed. But what if a train didn't need wheels? What if it could fly just a few inches off the ground? In this unit, we look at the Maglev (Magnetic Levitation) train, an engineering miracle that uses the 'invisible hands' of magnetism to fight gravity and friction at the same time.
Unit 6
Practice: Newton's Gym
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Welcome to the mental gym. You now know the rules of motion, but knowing them is different from seeing them. Physicists have a superpower: when they look at an object, they see invisible arrows pushing and pulling it. These arrows are called 'Vectors.' In this practice unit, we are going to train your brain to draw these arrows. We will look at objects standing still and moving, and you will identify exactly who is pushing, who is pulling, and who is winning the tug-of-war.
Unit 7
Practice: The Circuit Builder
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Now that you know electricity is just a circular river, it is time to become a plumber. In this practice unit, we are going to look at circuit diagrams—the maps that electricians use. Your job is to trace the path of the electrons. You will decide if the path is clear (Closed Circuit) or broken (Open Circuit), and predict whether the light will turn on or stay dark. This is the first step to thinking like an engineer.
Matter & Chemical Reactions: The Shapeshifters
Why is a rock hard and water wet? It's not the atoms — it's how fast they dance. Children explore the states of matter, what happens when atoms break old bonds and form new ones, and how to balance the chemistry of change.
- Explain the states of matter as atoms dancing at different speeds — including the fourth state, plasma
- Describe chemical reactions as atoms trading partners, with mass always conserved
- Balance chemical equations like a seesaw: what goes in must come out
- Understand catalysts — the matchmakers that speed reactions without being consumed
Unit 1
The Shapeshifters: States of Matter
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We know what matter is made of (atoms), but why is a rock hard and water wet? It isn't because the atoms are different; it is because they are dancing at different speeds. In this unit, we explore the States of Matter: Solid, Liquid, Gas, and the chaotic Plasma. We will see that 'freezing' and 'boiling' are just words for speeding up or slowing down the atomic dance.
Unit 2
The Swap Meet: Chemical Reactions
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Atoms are never satisfied. They are constantly breaking old bonds and making new ones. This process—where ingredients turn into something brand new—is called a Chemical Reaction. It is how your car burns gas, how your body digests food, and how rust eats metal. In this unit, we learn the rules of the Swap Meet, where atoms trade partners but never disappear.
Unit 3
Practice: The Balancer
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Chemistry equations can look scary, like '2H2 + O2 -> 2H2O'. But this is not complex math. It is just a seesaw. The rule is simple: The number of atoms on the Left side (Reactants) must exactly equal the number of atoms on the Right side (Products). You cannot lose a Lego brick. In this practice unit, we will look at broken equations and fix them by adding more molecules until the seesaw balances.
Waves & Light: The Messengers
The course closes with how information travels. Sound as a domino chain through air, light as the only thing fast enough to cross empty space, and the invisible rainbow that colors our world.
- Explain what a wave is — energy traveling through a medium — and why sound can't cross a vacuum
- Describe frequency, pitch, amplitude and the anatomy of every wave
- Understand why light travels at the cosmic speed limit and can cross empty space
- Explain color: an object is the color it reflects, and the full spectrum hides what our eyes can't see
Unit 1
The Ripple: Waves & Sound
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If a tree falls in the forest and no one is around, does it make a sound? Physics has a clear answer: Yes, it makes a wave. No, it doesn't make a sound unless there is an ear to catch it. In this unit, we explore how energy travels through the universe without moving any matter. We will learn that sound is just a shove passed from air molecule to air molecule, and why in space, no one can hear you scream.
Unit 2
The Spectrum: Light
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Sound needs air, but Light is special. Light can travel through empty space. That is the only reason we can see the Sun. For a long time, we thought 'Light' was just the stuff we could see. We were wrong. Visible light is just a tiny slice of a massive invisible rainbow called the Electromagnetic Spectrum. From radio waves that carry your music to X-rays that see your bones, it is all the same stuff: Light.
Unit 3
Practice: The Wave Lab
Lab8 questions
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Now that you know what waves are, let's head to the lab and measure them. Every wave—whether it is an ocean swell or a radio signal—has the same anatomy. It has a height, a length, and a speed. In this practice unit, we will learn to identify the parts of a wave and understand the simple seesaw rule: the longer the wave, the lower the frequency.
How mastery is tested
Every unit ends with practice questions in three formats (108 multiple choice · 54 fill in the blank · 54 order the words). Wrong answers are automatically recycled in later sessions until the learner proves mastery. Try one from each chapter — click an answer to test yourself:
According to the First Law of Thermodynamics, energy cannot be ____.
The center of the atom is called the ____.
nucleus
According to Newton's First Law, what does a moving object want to do?
A gas that has been heated until it becomes electrically charged is called ____.
plasma
Put these words in the correct order:
Sound is a vibration traveling through air
Print-ready study guide for parents & teachers — the full curriculum unit by unit, chapter outcomes, sample questions and key vocabulary.
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