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Free Oxygen student datasheet2-page printable revision sheet: atomic structure, O₂ molecular-orbital magnetism, isotopes, physical properties, atmosphere/water context, uses and review questions.
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Oxygen atomic number, mass, protons, electrons and valence electrons

Atomic number
8
8 protons
Electrons
8
neutral O atom
Valence electrons
6
2s² 2p⁴ outer electrons
Most abundant isotope
¹⁶O
8 protons · 8 neutrons
Relative atomic mass
15.999
Group / period
16 / 2
Melting point
54.36 K
Boiling point
90.188 K
Electronegativity
3.44
Pauling scale
Electron configuration[He] 2s² 2p⁴
ClassificationNonmetal · chalcogen
Ground-state shells2 · 6
State near room temperatureO₂ gas
Quick answers

Oxygen: quick answers

How many protons, neutrons and electrons does oxygen have?

Oxygen’s atomic number is 8, so every oxygen atom has 8 protons, and a neutral atom also has 8 electrons. Its most common natural isotope, oxygen-16, has 8 neutrons (other isotopes have different neutron counts).

What is the symbol for oxygen?

The chemical symbol for oxygen is O.

Is oxygen a solid, liquid or gas at room temperature?

Oxygen is a gas at room temperature (about 25 °C).

What family (group) is oxygen in?

Oxygen is a nonmetal, in group 16, period 2 of the periodic table.

How many valence electrons does oxygen have?

Oxygen has 6 valence electrons, the electrons in its outer shell, which matches its position in group 16.

What is the electron configuration of oxygen?

The ground-state electron configuration of oxygen is [He] 2s² 2p⁴.

Connect the facts

From atomic number to chemistry

Read these as a chain of causes, not as isolated facts. Each step links to the concept hub if you want the underlying idea explained.

Common misconceptionA Lewis structure that pairs all electrons does not explain ground-state O₂ magnetism; the molecular-orbital picture leaves two electrons unpaired.
Periodic-table position

Oxygen sits in Group 16 with six valence electrons

Oxygen lies in Period 2 between nitrogen and fluorine. Six valence electrons, small atomic size and high electronegativity make oxygen a strong bonding partner across molecular, ionic and solid-state chemistry.

Interactive Visual Lab

Oxygen Visual Lab

Decode the oxygen tile, rotate an ¹⁶O teaching model, inspect occupied atomic orbitals, build the O₂ magnetic story, then connect oxygen chemistry to air, water, steelmaking, medicine and combustion.

Atom · orbitals · O₂ · real world
How to read an oxygen tile

Seven facts packed into one square

18215.9993O4[He] 2s² 2p⁴5Oxygen6O₂7Gas
1Atomic number8 protons
2Relative atomic massNatural isotope-weighted value
3Chemical symbolO
4Electron configurationGround-state atom
5Element nameOxygen
6Elemental formCommonly O₂
7Physical stateGas near room temperature
Five things worth remembering

Oxygen in one minute

01

Atomic number 8. Every oxygen nucleus contains eight protons.

02

Six valence electrons. [He] 2s² 2p⁴ is the neutral ground-state configuration.

03

O₂ is paramagnetic. Two unpaired electrons survive in the molecular-orbital ground state.

04

−2 is common, not universal. Peroxides and other species show why oxidation-state rules need context.

05

Oxygen is an Earth-system element. It is distributed through atmosphere, water, rocks and living systems.

Atomic structure teaching model

Oxygen-16 · 8 protons + 8 neutrons

¹⁶O model
8 p⁺+ 8 n⁰ · ¹⁶O
Drag the nucleus to rotate it. Nucleon spheres and electron shell tracks are teaching aids, not literal classical trajectories.
Connect picture → chemistry

2 · 6 electrons

K2
L6
Why do six outer electrons matter?

Oxygen often forms two covalent bonds or gains electron density in oxide chemistry. High electronegativity helps make oxygen a strong partner in polar bonds and oxidation reactions.

Teaching model: shell counts are useful bookkeeping. The orbital tab provides the quantum-state picture needed to discuss unpaired p electrons.
Material / molecular structure viewer

O₂ · ordinary elemental oxygen molecule

molecular teaching preview
OO
What are you seeing?

At ordinary conditions elemental oxygen is molecular O₂ rather than a room-temperature crystal. The two bond strokes are a familiar bonding schematic; molecular-orbital theory is needed to explain O₂ paramagnetism.

The O₂ molecule tab retains the interactive 3D/electronic-structure teaching view.
Oxygen orbital probability-cloud explorer

2p orbital · effective-charge approximation

positive phasenegative phasepoint density ∝ |ψ|²
2p orientation
Hydrogenic shapes are scaled with a simple effective-charge estimate. This is an educational approximation, not a full many-electron calculation.
Ground-state electron configuration

[He] 2s² 2p⁴

1s↑↓
2s↑↓
2p↑↓   ↑   ↑
Why are two 2p electrons left unpaired in the atom?

Hund’s rule fills equal-energy p orbitals singly before pairing. The O₂ molecular story is related but requires molecular orbitals built from two atoms.

Important distinction: atomic 2p occupancy and molecular O₂ π/π* occupancy are different diagrams. The next tab makes that change of model explicit.
Molecular structure explorer

O₂ · triplet ground-state teaching model

The 3D atoms/bond are schematic; the unpaired-electron story is electronic-structure information, not little particles orbiting outside the molecule.
Molecular-orbital result

Two unpaired electrons

In the ground-state molecular-orbital description, two electrons occupy separate degenerate π* antibonding orbitals with parallel spins. That gives O₂ a net magnetic moment.

triplet O₂π* occupancy2 unpaired e⁻paramagnetic
Real-world archive

Where do I meet oxygen?

Clickable learning cards connect oxygen to atmosphere, water, biology, metallurgy, medicine and oxidation chemistry.

☁
Atmosphere

O₂ is a major component of Earth’s air

Atmospheric molecular oxygen is central to aerobic respiration and many combustion processes, while oxygen atoms are even more abundant overall when water and rocks are included.

Signature quantum module

Why is oxygen paramagnetic?

A simple paired-electron Lewis structure does not display the ground-state spin arrangement. Molecular-orbital theory leaves two electrons unpaired in separate π* orbitals.

≠Model lessoncompare bonding models ↓
Core learning idea: a model can be useful without showing every property. Lewis structures organize bonding and formal electrons; molecular-orbital occupancy explains the observed magnetic behavior of ordinary O₂.
Bonding & oxidation-state context

O₂, oxide, peroxide and ozone are different oxygen stories

The same element appears in multiple molecular and ionic environments. Use the selector to keep elemental oxygen separate from oxygen-containing compounds and allotropes.

O
Elemental oxygen

O₂ · a covalent diatomic molecule

Two oxygen atoms form molecular orbitals together. Bond order and magnetism are molecular properties, not simply two isolated 2p⁴ atoms sitting side by side.

Molecular model
Advanced data

Oxygen properties: atomic, molecular, chemical and isotope context

Reference values must distinguish isolated atomic quantities from properties of O₂ and from oxidation-state conventions inside compounds.

Atomic number8Number of protons.
Relative atomic mass15.999Natural isotope-weighted display.
Electron configuration[He] 2s² 2p⁴Neutral ground-state atom.
Electronegativity3.44Pauling scale.
Non-bonded atomic radius1.52 ÅRSC reference.
1st ionization energy1313.942 kJ/molGround-state gaseous atom.
Ordinary elemental formO₂Diatomic molecular gas.
Ground-state magnetic behaviorParamagneticTwo unpaired electrons in π* orbitals.
Melting point54.36 KNormal reference.
Boiling point90.188 KNormal reference.
O=O bond enthalpy498.3 kJ/molRSC reference.
Common oxidation state−2Common in ordinary oxides; not universal.
Peroxides−1 per oxygenO–O unit changes formal bookkeeping.
Representative compoundsH₂O, CO₂, Fe₂O₃Oxygen spans molecular and solid-state chemistry.
AllotropeO₃Ozone has different geometry/reactivity from O₂.
¹⁶O99.757%Stable · dominant natural isotope.
¹⁷O0.038%Stable.
¹⁸O0.205%Stable.
Temperature explorer · cryogenic phase path

Oxygen state at temperature: solid → liquid → gas

O₂ has a normal cryogenic liquid interval at approximately standard pressure. The controller keeps the Carbon prototype’s visual depth while using the scientifically appropriate three-state path.

Temperature90.0 K · −183.2 °C
40 K54.36 K melt · 90.188 K boil120 K
Cryogenic phase path

All three states shown here occur below room temperature except the familiar gas state. Liquid oxygen is pale blue and strongly paramagnetic, but this controller focuses on phase rather than attempting to simulate every optical or magnetic detail.

At 90 K O₂ is just below its normal boiling reference.
O₂
Liquid oxygen
90 K lies between the melting and boiling references.
Scientific rule: this one-dimensional slider is an approximately-standard-pressure reference; detailed oxygen phase behavior depends on pressure and solid phase.
Earth-system chemistry

Interactive oxygen cycle: atmosphere, water, life and rocks

Oxygen atoms move among molecular O₂, water, biomass and minerals. Click a reservoir to connect atmospheric oxygen to the much larger oxygen inventory bound in Earth materials.

Where on Earth?

Oxygen geography: atmosphere, oceans and rocks are global reservoirs

A country production map would be the wrong model for natural oxygen occurrence. The page uses global Earth-system layers, following the Carbon prototype’s evidence-aware geography approach.

World map outline for oxygen reservoir context
Atmosphere · O₂Globally mixedFree molecular oxygen
Oceans + iceGroundwaterO in H₂O
SilicatesOxides + soilsCrustal oxygen
Global reservoir layer — not country production data.Country outlines: Natural Earth.
History

Oxygen history: discovery, combustion and industrial air separation

1770s

Scheele

Prepared oxygen independently; the exact priority story is historically nuanced.

1774

Priestley

Prepared and studied the gas he called “dephlogisticated air.”

1770s–80s

Lavoisier

Explained oxygen’s role in combustion and helped overturn phlogiston theory.

20th c.

Air separation

Industrial cryogenic separation enabled large-scale oxygen supply.

Today

Essential industrial gas

Steelmaking, chemical manufacture, medicine and treatment systems use controlled oxygen supplies.

From air to industrial oxygen

How commercial oxygen is produced

Large-scale oxygen is commonly separated from air. The route depends on purity and scale; this is a high-level process map, not operating instructions.

1

Take in air

Atmospheric air provides the feed mixture of nitrogen, oxygen, argon and trace gases.

2

Clean + condition

Water, carbon dioxide and contaminants are removed as required by the process.

3

Separate components

Cryogenic distillation or adsorption-based processes exploit physical-property differences among gases.

4

Deliver safely

Oxygen is supplied as gas or cryogenic liquid with equipment designed for strong oxidizer service.

Real-world uses

Where oxygen is used

⚙

Steelmaking

Commercial oxygen supports high-temperature refining and oxidation control in steel production.

+

Medicine

Used in controlled respiratory support and clinical gas systems.

⚗

Chemical manufacture

Oxygen and oxygen-containing oxidants support many industrial syntheses.

≈

Water treatment

Oxygen transfer supports biological wastewater-treatment processes.

△

Cutting + combustion

Oxygen-rich conditions can intensify selected industrial combustion processes.

🚀

Oxidizer systems

Liquid oxygen is used as an oxidizer in selected aerospace propulsion systems.

Oxygen chemistry

Water, oxides, peroxides and ozone

H₂O

Water

Oxygen commonly forms two covalent bonds in neutral H₂O.

O²⁻

Oxides

Many metal oxides use formal oxygen oxidation state −2.

O–O

Peroxides

The O–O unit gives formal oxygen oxidation state −1 in simple peroxide bookkeeping.

O₃

Ozone

An allotrope with different geometry, reactivity and atmospheric roles from O₂.

Isotopes

Oxygen-16, oxygen-17 and oxygen-18

¹⁶O
99.757%
8 p · 8 n · stable
¹⁷O
0.038%
8 p · 9 n · stable
¹⁸O
0.205%
8 p · 10 n · stable
Element identity
Z = 8
proton number stays fixed
Learn it, don’t just read it

Five-question Oxygen check

How many valence electrons does neutral oxygen have?

Why is ground-state O₂ paramagnetic?

Which isotope dominates natural oxygen?

What is oxygen’s common oxidation state in ordinary oxides?

At room temperature, elemental oxygen is mainly what state?

Common oxygen questions · classroom-style explanations

Oxygen questions: quick answer first, then the mechanism

The page separates atomic electron configuration, molecular O₂ electronic structure, oxidation-state bookkeeping and Earth-system occurrence.

Why is oxygen paramagnetic?

Short answer: Ground-state O₂ has two unpaired electrons in separate π* antibonding molecular orbitals.

Unpaired electron spins produce a net magnetic moment, so molecular oxygen is attracted by a magnetic field. This is a classic case where molecular-orbital theory explains an observation that a simple paired-electron Lewis picture can obscure.

How many valence electrons does oxygen have?

Short answer: Six.

The [He] 2s² 2p⁴ configuration puts six electrons in the n=2 valence shell. That supports common two-bond patterns while still allowing broader oxidation-state chemistry.

Is oxygen flammable? Why does it support combustion without being the fuel?

Short answer: Oxygen is not normally classified as the fuel; O₂ is the oxidizing reactant that allows many fuels to burn rapidly.

Combustion is a redox process involving at least two reacting partners. The fuel is oxidized while oxygen is reduced into products such as oxides, CO₂ or H₂O. Raising the oxygen concentration can make materials ignite more readily and burn much faster, which is why oxygen-rich environments create severe fire hazards even though the oxygen itself is not described as “burning.”

The distinction is chemical-object specific: molecular O₂ is an oxidizer under ordinary combustion conditions. Saying “oxygen is flammable” confuses the oxidizer with the material being oxidized.

Key point: Oxygen supports and accelerates combustion because it is the oxidizer; the fuel is the species being oxidized.

Where is oxygen found naturally?

Short answer: In air, water, rocks, minerals and living systems.

Free O₂ is a major atmospheric component, but oxygen atoms are even more widespread in H₂O, silicates, oxides and biological molecules. That is why a single country-dot occurrence map would be misleading.

Is liquid oxygen magnetic?

Short answer: Yes, liquid O₂ is paramagnetic.

The magnetic response comes from the unpaired electrons of O₂ molecules. The temperature controller focuses on phase, while the signature module explains the electronic origin of the magnetism.

Source transparency

Scientific sources for Oxygen

Core atomic, isotope, molecular and phase statements are tied to authoritative scientific sources. Earth geography is presented as global reservoirs rather than invented country occurrence rankings.

Keep the curiosity going

Questions to ask next about Oxygen

A good element lesson should lead to the next useful question, not end after a list of facts.

Element Lookup · Oxygen · Interactive chemistry reference
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