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Free Radon student datasheetPrintable revision sheet with identity, structure, evidence notes, phase behavior, uses, isotopes and review prompts.
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Radon atomic number, mass, electron configuration and key properties

Atomic number
86
Relative atomic mass
[222]
Electron configuration
[Xe] 4f¹⁴ 5d¹⁰ 6s² 6p⁶
Stable isotopes
None
Gas density
0.009074 g/cm³
Melting point
202 K
Boiling point
211.5 K
Ordinary elemental form
Monatomic radioactive gas
ClassificationRadioactive noble gas
Reference isotope²²²Rn
State contextColorless radioactive gas at 20 °C
Evidence noteAtomic identity, decay and ordinary phase references are measured/evaluated. Geography modes intentionally avoid 'risk pins' because indoor radon is building-specific. Public-health statements are high-level and should be paired with local official guidance.
Quick answers

Radon: quick answers

How many protons, neutrons and electrons does radon have?

Radon’s atomic number is 86, so every radon atom has 86 protons, and a neutral atom also has 86 electrons. Radon has no stable isotopes, so the number of neutrons depends on which isotope you mean.

What is the symbol for radon?

The chemical symbol for radon is Rn.

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

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

What family (group) is radon in?

Radon is a noble gas, in group 18, period 6 of the periodic table.

How many valence electrons does radon have?

Radon has 8 valence electrons, the electrons in its outer shell, which matches its position in group 18.

What is the electron configuration of radon?

The ground-state electron configuration of radon is [Xe] 4f¹⁴ 5d¹⁰ 6s² 6p⁶.

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 misconceptionRadon being a noble gas does not make it nuclear-stable, and a general map cannot determine the radon concentration in a specific building.
Periodic-table position

Radon in its period and family

Radon is in Group 18, Period 6 below xenon. Its closed electron shell explains noble-gas chemistry, while radioactive instability comes from the nucleus and is not predicted by valence electrons.

Interactive Visual Lab

Radon Visual Lab

Decode radon’s tile, rotate a ²²²Rn teaching nucleus and monatomic gas model, inspect occupied 6s/6p probability models, and connect uranium/radium decay to indoor radon, half-life, geology and evidence-based public-health context.

Overview · structure · orbitals · real world
How to read an element tile

Every mark points to one exact feature

186 2[222] 3Rn 4[Xe] 4f¹⁴ 5d¹⁰ 6s² 6p⁶ 5Radon 6Monatomic radon gas · ordinary-state model 7Gas
1Atomic numberNumber of protons
2Relative atomic massStandard value or bracketed reference mass
3Chemical symbolRn
4Electron configurationGround-state shorthand or evidence-labelled prediction
5Element nameRadon
6Structure contextMonatomic radon gas · ordinary-state model
7Physical-state contextColorless radioactive gas at 20 °C

The numbered markers explain the same information system used throughout Element Lookup. Unknown or predicted fields remain visibly labelled rather than being replaced with guesses.

Five things worth remembering

Radon in one minute

01

Atomic number 86 means every radon nucleus contains 86 protons.

02

Neutral radon has a closed-shell [Xe] 4f¹⁴ 5d¹⁰ 6s² 6p⁶ configuration.

03

Radon is a noble gas chemically but has no stable isotopes.

04

²²²Rn has a half-life of about 3.8 days and arises in the uranium-238 decay series through radium-226.

05

Radon exposure risk depends on concentration and time; building-specific levels require measurement rather than a generic map.

Atomic structure teaching model

²²²Rn nucleus · neutral Rn

86 p⁺ · 136 n⁰
Nucleus modelNucleon-count teaching view
86 p⁺ + 136 n⁰²²²Rn · schematic nucleus, not a literal nuclear geometry
Electron-count schematicPrincipal-shell populations

Shell rings organize electron counts. They are not electron trajectories or orbital shapes.

Nucleus, shell count and material structure are deliberately separated so one picture is not mistaken for another.
Connect picture → chemistry

2 · 8 · 18 · 32 · 18 · 8 electrons

n=12
n=28
n=318
n=432
n=518
n=68
Why this electron pattern matters

The 6s and 6p models are isolated-atom probability distributions. They explain electronic shell closure, not radioactive decay; alpha decay is a nuclear process.

Teaching boundary: the nucleus uses colored spheres to make proton/neutron counts visible; the shell diagram only summarizes principal-shell populations. Neither is a literal picture of electron motion.
Material / molecular structure viewer

Monatomic radon gas · ordinary-state model

At ordinary conditions radon is a monatomic gas. The material viewer therefore shows separated atoms, not a molecule or room-temperature lattice.
Monatomic radon gas · ordinary-state modelAt ordinary conditions radon is a monatomic gas. The material viewer therefore shows separated atoms, not a molecule or room-temperature lattice.
What are you seeing?

At ordinary conditions radon is a monatomic gas. The material viewer therefore shows separated atoms, not a molecule or room-temperature lattice.. The viewer is evidence-aware: measured structures are identified as such; unknown bulk structures stay unknown.

Teaching visualization; not a literal finite sample or thermal trajectory.
Probability-cloud teaching model

6s orbital

One-electron teaching approximation; dots represent sampled probability density, not individual electrons.
Interpretation

What this model does—and does not—show

The 6s and 6p models are isolated-atom probability distributions. They explain electronic shell closure, not radioactive decay; alpha decay is a nuclear process.

Important: The cloud includes the expected nodal pattern for the named nonrelativistic orbital where applicable. Phase colors are not electric charge. For heavy and superheavy elements, relativistic/many-electron effects make these only teaching approximations.
Real-world archive

Where do I meet radon?

Clickable learning cards connect the element to materials, environment, technology, biology or research - depending on what the evidence actually supports.

Decay
Indoor radon

Indoor radon

Radon can enter buildings from soil and rock. Indoor concentration depends on local geology, building pathways, ventilation and other conditions.

1899-1900Radioactive 'emanations' from thorium and radium were observed during the rapid early development of radioactivity science.
1900Friedrich Ernst Dorn reported the radium emanation later understood as radon.
20th centuryRadon was recognized as a noble gas and as an important occupational and environmental exposure.
TodayIndoor radon testing and mitigation are established public-health measures in many countries.
Evidence principleAtomic identity, decay and ordinary phase references are measured/evaluated. Geography modes intentionally avoid 'risk pins' because indoor radon is building-specific. Public-health statements are high-level and should be paired with local official guidance.
Signature science

Closed-shell noble gas, unstable nucleus

Radon is a clean demonstration that chemical stability and nuclear stability are different questions.

Evaluated

Noble-gas shell

Rn has a closed 6p6 outer shell, so its ordinary chemistry is noble-gas-like.

Reference properties

Radon properties: atomic, physical, thermal and chemical

Categories follow the science of this element rather than a fixed decorative template. Each row carries condition/provenance context and an evidence label; unknown values stay unknown.

PropertyValueContext / provenanceEvidence
Atomic number86Source-reviewed; see Sources belowEvaluated
Relative atomic mass[222]Source-reviewed; see Sources belowEvaluated
Ground-state electron configuration[Xe] 4f¹⁴ 5d¹⁰ 6s² 6p⁶Source-reviewed; see Sources belowEvaluated
Group / period / blockGroup 18 · Period 6 · p-blockPeriodic-table placementEvaluated
ElectronegativityUnknown / not routinely assignedSource-reviewed; see Sources belowEvaluated
Reference isotope²²²RnSource-reviewed; see Sources belowEvaluated
PropertyValueContext / provenanceEvidence
State contextColorless radioactive gas at 20 °CSource-reviewed; see Sources belowEvaluated
Density0.009074 g/cm³ · gas referenceSource-reviewed; see Sources belowEvaluated
Material / molecular structureMonatomic radon gas · ordinary-state modelAt ordinary conditions radon is a monatomic gas. The material viewer therefore shows separated atoms, not a molecule or room-temperature lattice.Measured
ClassificationRadioactive noble gasPeriodic-table / chemistry classificationEvaluated
Structure-model scopeAt ordinary conditions radon is a monatomic gas. The material viewer therefore shows separated atoms, not a molecule or room-temperature lattice.Teaching visualization; exact crystallographic coordinates are not implied unless stated.Reviewed
PropertyValueContext / provenanceEvidence
Melting / transition reference202 KSource-reviewed; see Sources belowEvaluated
Boiling / gas reference211.5 KSource-reviewed; see Sources belowEvaluated
Phase-path contextAt approximately standard pressure, radon is solid below about 202 K, liquid to about 211.5 K, and gaseous above. The ordinary room-temperature material view is therefore a monatomic gas.Shared phase registry drives the slider, regions and markers.Evaluated
Condition warningTemperature and pressure define phase behavior; purity/allotropy may matter.Teaching condition statementReviewed
PropertyValueContext / provenanceEvidence
Common oxidation states0 dominant · limited compound chemistry existsSource-reviewed; see Sources belowEvaluated
Ion / common ion contextNo common stable monatomic ionSource-reviewed; see Sources belowEvaluated
Periodic chemistry contextRadon is in Group 18, Period 6 below xenon. Its closed electron shell explains noble-gas chemistry, while radioactive instability comes from the nucleus and is not predicted by valence electrons.Element-specific interpretationReviewed
Chemistry cautionElemental form, ions and compounds are distinct chemical objects.Interpretive teaching ruleReviewed
PropertyValueContext / provenanceEvidence
²²²RnRadioactive · half-life about 3.8 daysThe most important isotope for indoor-radon exposure and the teaching nucleus on this page.Evaluated
²²⁰RnRadioactive · short-livedSometimes called thoron; it belongs to the thorium-232 decay series.Evaluated
Radon isotope familyNo stable isotopesEvery radon isotope is radioactive; isotope identity determines half-life and decay-chain context.Evaluated
Teaching nucleus²²²Rn · 86 protons + 136 neutronsReference isotope used in the nucleus modelReviewed
PropertyValueContext / provenanceEvidence
Page evidence noteAtomic identity, decay and ordinary phase references are measured/evaluated. Geography modes intentionally avoid 'risk pins' because indoor radon is building-specific. Public-health statements are high-level and should be paired with local official guidance.Evidence summary for this guideReviewed
Structure evidenceAt ordinary conditions radon is a monatomic gas. The material viewer therefore shows separated atoms, not a molecule or room-temperature lattice.Measured structure, labelled schematic, prediction or explicit unknown as applicable.Reviewed
Map evidence ruleReal pins are reviewed examples; conceptual layers are used when pins would mislead.Geography Explorer 2.0Reviewed
Source set3 primary/reference links listed belowOpen the Sources section for the actual references.Reviewed
Temperature explorer

Is Radon a solid, liquid or gas? State at temperature

At approximately standard pressure, radon is solid below about 202 K, liquid to about 211.5 K, and gaseous above. The ordinary room-temperature material view is therefore a monatomic gas.

Temperature293 K
Move the slider
The shared site-wide phase model controls the track, markers and readout.
Geography and evidence

Where on Earth is Radon found or produced?

World map
Global conceptualUS EPA radon science · reviewed
Discovery and history

Who discovered Radon, and when?

1899-1900

Radioactive 'emanations' from thorium and radium were observed during the rapid early development of radioactivity science.

1900

Friedrich Ernst Dorn reported the radium emanation later understood as radon.

20th century

Radon was recognized as a noble gas and as an important occupational and environmental exposure.

Today

Indoor radon testing and mitigation are established public-health measures in many countries.

Process / synthesis context

How radon enters indoor environments: a non-operational science path

1

Uranium-238 decay in minerals eventually produces radium-226, which can alpha-decay to radon-222.

2

As a noble gas, radon atoms can move through pore spaces in soil and rock more readily than solid parent nuclides.

3

Pressure differences and building openings can allow soil gas to enter indoor spaces.

4

Indoor concentration is measured with appropriate detectors; public-health agencies provide guidance for interpreting results and mitigation decisions.

Safety boundary: Radon is a radioactive inhalation hazard. For real buildings, use official local guidance and appropriate testing rather than relying on a generic educational map.
Real-world applications

What is radon used for?

Public-health measurement

Radon is primarily a hazard to measure and manage rather than a material with broad commercial uses.

Earth and groundwater research

Radon can be used as a tracer in specialized geoscience and hydrology studies.

Historical medicine

Radon and radium were once used in medical contexts that predate modern radiation protection; historical use is not a current recommendation.

Nuclear science

Radon isotopes provide examples for teaching radioactive decay chains and noble-gas behavior.

Isotopes

Radon isotopes and natural abundance

²²²Rn

Radioactive · half-life about 3.8 days

The most important isotope for indoor-radon exposure and the teaching nucleus on this page.

²²⁰Rn

Radioactive · short-lived

Sometimes called thoron; it belongs to the thorium-232 decay series.

Radon isotope family

No stable isotopes

Every radon isotope is radioactive; isotope identity determines half-life and decay-chain context.

Learn it, don’t just read it

Five-question Radon check

What is radon’s atomic number?

Why is radon chemically a noble gas?

Which isotope is most important for indoor radon?

Can a world map tell the radon level in one house?

What is radon’s ordinary state at room temperature?

Questions answered

Radon questions students commonly ask

Each answer starts with the direct fact, then explains the chemistry, evidence or material context so the result is understandable rather than merely memorized.

What is radon?

Short answer: Radon is radioactive noble-gas element 86, symbol Rn.

Atomic number 86 means every radon nucleus contains 86 protons. In the periodic table, Radon is classified here as a radioactive noble gas in Period 6 and Group 18. Radon is in Group 18, Period 6 below xenon. Its closed electron shell explains noble-gas chemistry, while radioactive instability comes from the nucleus and is not predicted by valence electrons.

Key point: Rn is element 86; its periodic position and electron structure explain the rest of the page.

Where does radon come from?

Short answer: It forms naturally in radioactive decay chains, especially when radium-226 decays in uranium-bearing rocks and soils.

Radon is element 86, a radioactive noble gas produced naturally in uranium-series decay. Because it can migrate from soil and rock into buildings, its most important real-world lesson connects nuclear decay, gas transport and indoor exposure without turning the page into a site-specific risk assessment. Radon is in Group 18, Period 6 below xenon. Its closed electron shell explains noble-gas chemistry, while radioactive instability comes from the nucleus and is not predicted by valence electrons.

Key point: Use the direct answer together with the material, isotope and evidence context shown elsewhere on the page.

Why is radon radioactive even though it is a noble gas?

Short answer: “Noble gas” describes radon’s electron-shell chemistry; “radioactive” describes the stability of its nucleus. Those are different layers of atomic structure.

Radon has a filled outer electron shell and therefore belongs to Group 18, but its nuclei contain proton–neutron combinations that are unstable. Nuclear decay can occur without requiring ordinary chemical reactivity. This is a useful reminder that electron configuration controls most chemistry while nuclear composition controls isotope stability.

Key point: Chemical inertness does not imply nuclear stability.

Where is radon found?

Short answer: It can occur in soil gas, groundwater and indoor air. Local concentrations vary and are not predictable from a simple world map.

Uranium-238 decay in minerals eventually produces radium-226, which can alpha-decay to radon-222. Indoor radon Radon can enter buildings from soil and rock. Indoor concentration depends on local geology, building pathways, ventilation and other conditions.

Key point: Natural occurrence, resources, production and recycling are different geography questions.

How do I know the radon level in a building?

Short answer: Measure it with an appropriate radon test. Element Lookup does not infer building-specific risk from geography.

Radon exposure risk depends on concentration and time; building-specific levels require measurement rather than a generic map. Radon is element 86, a radioactive noble gas produced naturally in uranium-series decay. Because it can migrate from soil and rock into buildings, its most important real-world lesson connects nuclear decay, gas transport and indoor exposure without turning the page into a site-specific risk assessment.

Key point: Use the direct answer together with the material, isotope and evidence context shown elsewhere on the page.

What is radon’s electron configuration?

Short answer: [Xe] 4f¹⁴ 5d¹⁰ 6s² 6p⁶, a closed-shell noble-gas configuration.

The neutral-atom ground-state reference used on this page is [Xe] 4f¹⁴ 5d¹⁰ 6s² 6p⁶. This is an isolated-atom reference: bonding and ion formation can change which outer electrons are present or chemically active. The listed common oxidation-state context is 0 dominant · limited compound chemistry exists, which helps connect the atomic configuration to ordinary chemistry without treating electron counting as a single universal rule.

Key point: Electron configuration is a ground-state atomic reference, not a literal picture of every compound.

Why is radon dangerous?

Short answer: Long-term inhalation of elevated radon increases lung-cancer risk, largely because short-lived radioactive decay products can deposit in the respiratory tract and irradiate tissue with alpha particles.

Radon itself is an inert noble-gas atom chemically, but it is radioactive. After radon decays, its short-lived solid progeny can attach to airborne particles and deposit in the lungs when inhaled. Their alpha emissions can damage nearby cells. Risk depends on concentration and duration of exposure; building radon levels are therefore a measurement problem, not something that can be judged by smell or appearance.

Key point: The main health mechanism involves nuclear decay and inhaled progeny, not ordinary noble-gas chemical reactivity.

Scientific sources and provenance

Scientific sources for Radon

Evidence rule: Atomic identity, decay and ordinary phase references are measured/evaluated. Geography modes intentionally avoid 'risk pins' because indoor radon is building-specific. Public-health statements are high-level and should be paired with local official guidance.
Keep the curiosity going

Questions to ask next about Radon

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

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