Your guide to quantum computing.
0%
Menu
What Is Quantum? The Technology The Different Quantum Computers Changing the World The Security Story Investing Landscape Learn (curriculum) Companies Applications Glossary Timeline Evaluating Claims Courses Quantum, But Friendly Inside a Quantum Computer Quantum in the Real World Quantum Computing Foundations Quantum Circuits, Algorithms, and Industry Fault-Tolerant Quantum Computing and Technical Strategy My Progress News FAQ Additional Resources Ask Quantum AI Agents ★ Saved
About About us Methodology Contact Disclaimer
My Progress
0%

Quantum Curious

See full progress
SAVE YOUR PROGRESS

Progress lives in this browser and is lost if you log out or clear it: unless you save it with your email. Same email on any device = same progress.

Dark mode

Guided View
New to all this? We add extra plain-English hints and reminders as you learn. Same lessons, with the help built in.

Expert View
You just want the lessons: clean, fast and compact, with no extra reminders. This is the default view.

Interface language

Technology / Quantum Computers

Quantum computers

What the machine actually is, the six steps every quantum computation follows, and the metrics that matter more than qubit count.

Mostly a very fancy fridge

The famous golden chandelier is almost entirely a cooling system; the quantum chip is smaller than a fingernail and hangs at the bottom, at about 0.01 degrees above absolute zero. Qubits are fragile (the tiniest heat or vibration "measures" them by accident and collapses their state (decoherence)) so cold, quiet isolation is the price of computation. The full story of what a quantum computer is and is not: start here.

How a quantum computation works: the six-step sequence

  1. Initialize qubits in a known state, commonly |0…0⟩.
  2. Apply gates that create superposition and encode the problem.
  3. Entangle qubits so the register can represent correlations among variables.
  4. Apply phase transformations and interference steps that amplify useful outcomes.
  5. Measure the qubits, producing a classical bit string.
  6. Repeat the circuit many times and use classical processing to estimate probabilities, energies, gradients, or candidate solutions.

Gates are reversible linear transformations. The Hadamard gate creates superposition, rotation gates change amplitudes and phase, and controlled gates like CNOT create entanglement. A circuit is a time-ordered sequence of these operations. The mechanism doing the real work is interference: amplitudes of wrong answers are arranged to cancel while right answers reinforce.

Why algorithms matter more than raw qubit count

A processor with many qubits is not automatically more useful. The algorithm must fit the hardware and beat a strong classical baseline at an economically relevant task. The metrics that actually describe a machine:

MetricWhat it meansWhy it matters
Physical qubitsIndividual hardware qubitsLarge counts can still be noisy
Logical qubitsError-corrected qubits presented to algorithmsCloser to the useful computational resource
Gate fidelityProbability a gate behaves correctlyErrors compound across deep circuits
Coherence timeHow long quantum information persistsLimits circuit duration
ConnectivityWhich qubits can directly interactPoor connectivity adds routing overhead
Circuit depthNumber of sequential gate layersDeep algorithms require lower error rates
Benchmark suitesComposite performance indicatorsNo single metric tells the full story

Investor lens: every metric in that table is a diligence question. "How many qubits?" is answered in press releases; "what is the logical error rate and circuit depth?" is answered in papers. The full checklist lives on Evaluating claims.

Go deeper (5 minutes each)

Qubitsthe unit, properly Hardwarethe seven ways to build one Inside a Quantum Computerthe friendly lesson set The Academystructured courses, three tiers

From the news all news →

Graphene measurements reveal energy-loss and quantum-coherence exponents diverge under gate control

Phys.org · Sep 23 ↗

Scientists build world's most accurate atomic clock

Phys.org · Sep 23 ↗

CGI And D-Wave Quantum Partner to Advance Enterprise Quantum Adoption

The Quantum Insider · Sep 23 ↗

Want to make it stick? The "Inside a Quantum Computer" lessons cover this page as tap-through slides with quizzes, about 20 minutes.

Start the fun lessons → Free · no grades, no pressure · playful quizzes with unlimited retakes

Quantum, But Friendly

How Small Is Small?The Spinning CoinBit vs QubitSpooky Friends Final test

Inside a Quantum Computer

The Golden ChandelierHow It ThinksGood At, Bad At Final test

Quantum in the Real World

Quantum You Already OwnThe Great Quantum RaceFollowing the Quantum Money Final test

The Academy

Quantum Computing FoundationsQuantum Circuits, Algorithms, and IndustryFault-Tolerant Quantum Computing and Technical Strategy The full curriculum

Quick answers

GlossaryFAQ Additional ResourcesAsk Quantum Quantum News